{"refrec":{"BRefID":42920,"RR":"Geophysical Research Letters. American Geophysical Union: Washington.  ISSN 0094-8276; e-ISSN 1944-8007","BEntID":43509,"PublicFlag":1,"CheckedFlag":0,"wosflag":1,"vabbflag":1,"RefStringPartII":". American Geophysical Union: Washington.  ISSN 0094-8276; e-ISSN 1944-8007","DocTypID":16,"DocType":"Journal","MarineFlag":0,"FreshFlag":0,"BrackishFlag":0,"TerrestrialFlag":0,"Authorstring":null,"OrigTitleTranslFlag":0,"Authorstringtrunc":null,"Englishabstract":null,"AbstractOtherLang":null,"BibLvlCode":"S","StandardTitle":"Geophysical Research Letters","OrigTitleLangCode":"en","OrigTitleLangCodeExtended":"eng","OrigTitleLangID":15,"DateLastModified":{"date":"2024-12-10 01:33:17.368041","timezone_type":1,"timezone":"+01:00"},"UserAccessRight":null,"UserAccID":null,"AuthorKeywords":null,"OtherDescriptors":null,"Notes":null,"AnaPub":null,"MonPub":null,"DateUpdate":"2013-08-26","DateCreate":"2001-03-21","SecASFANote":null,"ConfID":null,"PeerRev":1,"VlizCoreFlag":1,"WoScode":null,"VABBcode":null,"OpenAcc":0},"refs":null,"anarec":null,"monrec":null,"serrec":{"SerID":42920,"ISSN":"0094-8276","Abbreviation":"Geophys. Res. Lett.","PublID":null,"City":"Washington","InpCentreCode":"CS","ASFACode":"000894","AntilopeFlag":0,"PerioID":null,"CurrentFlag":0,"PeerRevFlag":1,"DigISSN":"1944-8007","InputCentre":"CSA","Periodicity":null,"FromYear":1974,"ToYear":null,"WoSFlag":1,"ISSNL":"0094-8276","EmbargoYears":null,"VABBFlag":1},"relations":null,"relationsRev":null,"addrec":null,"othpubs":null,"ownerships":null,"authors":null,"mapdetails":null,"datasets":null,"monographs":null,"monparts":null,"serparts":[{"BRefID":104976,"RR":"<b>Savoye, N.; Buesseler, K.O.; Cardinal, D.; Dehairs, F.A.</b> (2004). <sup>234</sup>Th deficit and excess in the Southern Ocean during spring 2001: particle export and remineralization. <i>Geophys. Res. Lett. 31(12)</i>: L12301. <a href=\"http://dx.doi.org/10.1029/2004GL019744\" target=\"_blank\">http://dx.doi.org/10.1029/2004GL019744</a>","StandardTitle":"<sup>234</sup>Th deficit and excess in the Southern Ocean during spring 2001: particle export and remineralization","AuthorsString":"Savoye, N. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":314335,"RR":"<b>Stuut, J.-B.W.; De Deckker, P.; Saavedra-Pellitero, M.; Bassinot, F.; Drury, A.-J.; Walczak, M.H.; Nagashima, K.; Murayama, M.</b> (2019). A 5.3‐million‐year history of monsoonal precipitation in northwestern Australia. <i>Geophys. Res. Lett. 46(12)</i>: 6946-6954. <a href=\"https://dx.doi.org/10.1029/2019gl083035\" target=\"_blank\">https://dx.doi.org/10.1029/2019gl083035</a>","StandardTitle":"A 5.3‐million‐year history of monsoonal precipitation in northwestern Australia","AuthorsString":"Stuut, J.-B.W. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":281315,"RR":"<b>Kandiano, E.S.; Van der Meer, M.T.J.; Bauch, H.A.; Helmke, J.; Sinninghe Damsté, J.S.; Schouten, S.</b> (2016). A cold and fresh ocean surface in the Nordic Seas during MIS 11: Significance for the future ocean. <i>Geophys. Res. Lett. 43(20)</i>: 10,929–10,937. <a href=\"https://dx.doi.org/10.1002/2016GL070294\" target=\"_blank\">https://dx.doi.org/10.1002/2016GL070294</a>","StandardTitle":"A cold and fresh ocean surface in the Nordic Seas during MIS 11: Significance for the future ocean","AuthorsString":"Kandiano, E.S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":417548,"RR":"<b>Glaude, Q.; Noel, B.; Olesen, M.; van den Broeke, M.; van de Berg, W.J.; Mottram, R.; Hansen, N.; Delhasse, A.; Amory, C.; Kittel, C.; Goelzer, H.; Fettweis, X.</b> (2024). A Factor Two Difference in 21st-Century Greenland Ice Sheet Surface Mass Balance Projections From Three Regional Climate Models Under a Strong Warming Scenario (SSP5-8.5). <i>Geophys. Res. Lett. 51(22)</i>. <a href=\"https://dx.doi.org/10.1029/2024GL111902\" target=\"_blank\">https://dx.doi.org/10.1029/2024GL111902</a>","StandardTitle":"A Factor Two Difference in 21st-Century Greenland Ice Sheet Surface Mass Balance Projections From Three Regional Climate Models Under a Strong Warming Scenario (SSP5-8.5)","AuthorsString":"Glaude, Q. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":323203,"RR":"<b>Dijkstra, Y.M.; Schuttelaars, H.M.; Schramkowski, G.P.</b> (2019). A regime shift from low to high sediment concentrations in a tide-dominated estuary. <i>Geophys. Res. Lett. 46(8)</i>: 4338-4345. <a href=\"https://dx.doi.org/10.1029/2019GL082302\" target=\"_blank\">https://dx.doi.org/10.1029/2019GL082302</a>","StandardTitle":"A regime shift from low to high sediment concentrations in a tide-dominated estuary","AuthorsString":"Dijkstra, Y.M.; Schuttelaars, H.M.; Schramkowski, G.P.","BibLvlCode":"AS"},{"BRefID":238502,"RR":"<b>Van Oyen, T.; Lanzoni, S.; D'Alpaos, A.; Temmerman, S.; Troch, P.; Carniello, L.</b> (2012). A simplified model for frictionally dominated tidal flows. <i>Geophys. Res. Lett. 39(12)</i>. <a href=\"http://dx.doi.org/10.1029/2012GL051949\" target=\"_blank\">dx.doi.org/10.1029/2012GL051949</a>","StandardTitle":"A simplified model for frictionally dominated tidal flows","AuthorsString":"Van Oyen, T. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":381574,"RR":"<b>Jersild, A.; Landschützer, P.</b> (2024). A spatially explicit uncertainty analysis of the air‐sea CO<sub>2</sub> flux from observations. <i>Geophys. Res. Lett. 51(4)</i>: e2023GL106636. <a href=\"https://dx.doi.org/10.1029/2023gl106636\" target=\"_blank\">https://dx.doi.org/10.1029/2023gl106636</a>","StandardTitle":"A spatially explicit uncertainty analysis of the air‐sea CO<sub>2</sub> flux from observations","AuthorsString":"Jersild, A.; Landschützer, P.","BibLvlCode":"AS"},{"BRefID":230863,"RR":"<b>Blaga, C.I.; Reichart, G.J.; Lotter, A.F.; Anselmetti, F.S.; Sinninghe Damsté, J.S.; Anselmetti, F.S.; Sinninghe Damsté, J.S.</b> (2013). A TEX<sub>86</sub> lake record suggests simultaneous shifts in temperature in Central Europe and Greenland during the last deglaciation. <i>Geophys. Res. Lett. 40(5)</i>: 948-953. <a href=\"http://dx.doi.org/10.1002/grl.50181\" target=\"_blank\">dx.doi.org/10.1002/grl.50181</a>","StandardTitle":"A TEX<sub>86</sub> lake record suggests simultaneous shifts in temperature in Central Europe and Greenland during the last deglaciation","AuthorsString":"Blaga, C.I. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":123859,"RR":"<b>Comiso, J.C.; Parkinson, C.L.; Gersten, R.; Stock, L.</b> (2008). Accelerated decline in the Arctic sea ice cover. <i>Geophys. Res. Lett. 35(1)</i>: L01703(1-6). <a href=\"http://dx.doi.org/10.1029/2007GL031972\" target=\"_blank\">http://dx.doi.org/10.1029/2007GL031972</a>","StandardTitle":"Accelerated decline in the Arctic sea ice cover","AuthorsString":"Comiso, J.C. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":335849,"RR":"<b>Caldeira, K.; Rau, G.H.</b> (2000). Accelerating carbonate dissolution to sequester carbon dioxide in the ocean: Geochemical implications. <i>Geophys. Res. Lett. 27(2)</i>: 225-228. <a href=\"https://dx.doi.org/10.1029/1999gl002364\" target=\"_blank\">https://dx.doi.org/10.1029/1999gl002364</a>","StandardTitle":"Accelerating carbonate dissolution to sequester carbon dioxide in the ocean: Geochemical implications","AuthorsString":"Caldeira, K.; Rau, G.H.","BibLvlCode":"AS"},{"BRefID":392092,"RR":"<b>Dong, Y.; Bakker, D.C.E.; Landschützer, P.</b> (2024). Accuracy of ocean CO<sub>2</sub> uptake estimates at a risk by a reduction in the data collection. <i>Geophys. Res. Lett. 51(9)</i>: e2024GL108502. <a href=\"https://dx.doi.org/10.1029/2024gl108502\" target=\"_blank\">https://dx.doi.org/10.1029/2024gl108502</a>","StandardTitle":"Accuracy of ocean CO<sub>2</sub> uptake estimates at a risk by a reduction in the data collection","AuthorsString":"Dong, Y.; Bakker, D.C.E.; Landschützer, P.","BibLvlCode":"AS"},{"BRefID":364166,"RR":"<b>Song, S.; Chen, Y.; Chen, X.; Chen, C.; Li, K.-F.; Tung, K.-K.; Shao, Q.; Liu, Y.; Wang, X.; Yi, L.; Zhao, J.</b> (2023). Adapting to a foggy future along trans‐Arctic shipping routes. <i>Geophys. Res. Lett. 50(8)</i>: e2022GL102395. <a href=\"https://dx.doi.org/10.1029/2022gl102395\" target=\"_blank\">https://dx.doi.org/10.1029/2022gl102395</a>","StandardTitle":"Adapting to a foggy future along trans‐Arctic shipping routes","AuthorsString":"Song, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":382763,"RR":"<b>Dalaiden, Q.; Rezsohazy, J.; Goosse, H.; Thomas, E.R.; Vladimirova, D.O.; Tetzner, D.</b> (2023). An unprecedented sea ice retreat in the Weddell Sea driving an overall decrease of the Antarctic sea-ice extent over the 20th century. <i>Geophys. Res. Lett. 50(21)</i>: e2023GL104666. <a href=\"https://dx.doi.org/10.1029/2023GL104666\" target=\"_blank\">https://dx.doi.org/10.1029/2023GL104666</a>","StandardTitle":"An unprecedented sea ice retreat in the Weddell Sea driving an overall decrease of the Antarctic sea-ice extent over the 20th century","AuthorsString":"Dalaiden, Q. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":295817,"RR":"<b>Favier, L.; Pattyn, F.</b> (2015). Antarctic ice rise formation, evolution, and stability. <i>Geophys. Res. Lett. 42(11)</i>: 4456-4463. <a href=\"https://dx.doi.org/10.1002/2015GL064195\" target=\"_blank\">https://dx.doi.org/10.1002/2015GL064195</a>","StandardTitle":"Antarctic ice rise formation, evolution, and stability","AuthorsString":"Favier, L.; Pattyn, F.","BibLvlCode":"AS"},{"BRefID":391251,"RR":"<b>Gorte, T.; Lovenduski, N.S.; Nisssen, C.; Lenaerts, J.T.M.</b> (2023). Antarctic ice sheet freshwater discharge drives substantial Southern Ocean changes over the 21st century. <i>Geophys. Res. Lett. 50(20)</i>: e2023GL104949. <a href=\"https://dx.doi.org/10.1029/2023GL104949\" target=\"_blank\">https://dx.doi.org/10.1029/2023GL104949</a>","StandardTitle":"Antarctic ice sheet freshwater discharge drives substantial Southern Ocean changes over the 21st century","AuthorsString":"Gorte, T. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":258008,"RR":"<b>Swingedouw, D.; Fichefet, T.; Huybrechts, P.; Goosse, H.; Driesschaert, E.; Loutre, M.-F.</b> (2008). Antarctic ice-sheet melting provides negative feedbacks on future climate warming. <i>Geophys. Res. Lett. 35(17)</i>. <a href=\"https://dx.doi.org/10.1029/2008GL034410\" target=\"_blank\">https://dx.doi.org/10.1029/2008GL034410</a>","StandardTitle":"Antarctic ice-sheet melting provides negative feedbacks on future climate warming","AuthorsString":"Swingedouw, D. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":337855,"RR":"<b>Roach, L.A.; Dörr, J.; Holmes, C.R.; Massonnet, F.; Blockley, E.W.; Notz, D.; Rackow, T.; Raphael, M.N.; O'Farrell, S.P.; Bailey, D.A.; Bitz, C.M.</b> (2020). Antarctic sea ice area in CMIP6. <i>Geophys. Res. Lett. 47(9)</i>: e2019GL086729. <a href=\"https://hdl.handle.net/10.1029/2019GL086729\" target=\"_blank\">https://hdl.handle.net/10.1029/2019GL086729</a>","StandardTitle":"Antarctic sea ice area in CMIP6","AuthorsString":"Roach, L.A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":295262,"RR":"<b>Rusiecka, D.; Gledhill, M.; Milne, A.; Achterberg, E.P.; Annett, A.L.; Atkinson, S.; Birchill, A.; Karstensen, J.; Lohan, M.; Mariez, C.; Middag, R.; Rolison, J.M.; Tanhua, T.; Ussher, S.; Connelly, D.</b> (2018). Anthropogenic signatures of lead in the Northeast Atlantic. <i>Geophys. Res. Lett. 45(6)</i>: 2734-2743. <a href=\"https://doi.org/10.1002/2017GL076825\" target=\"_blank\">https://doi.org/10.1002/2017GL076825</a>","StandardTitle":"Anthropogenic signatures of lead in the Northeast Atlantic","AuthorsString":"Rusiecka, D. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":231222,"RR":"<b>Fisher, R.E.; Sriskantharajah, S.; Lowry, D.; Lanoisellé, M.; Fowler, C.M.R.; James, R.H.; Hermansen, O.; Lund Myhre, C.; Stohl, A.; Greinert, J.; Nisbet-Jones, P.B.R.; Mienert, J.; Nisbet, E.G.</b> (2011). Arctic methane sources: Isotopic evidence for atmospheric inputs. <i>Geophys. Res. Lett. 38</i>. <a href=\"http://dx.doi.org/10.1029/2011GL049319\" target=\"_blank\">dx.doi.org/10.1029/2011GL049319</a>","StandardTitle":"Arctic methane sources: Isotopic evidence for atmospheric inputs","AuthorsString":"Fisher, R.E. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":337844,"RR":"<b>Notz, D.; SIMIP Community</b> (2020). Arctic sea ice in CMIP6. <i>Geophys. Res. Lett. 47(10)</i>: e2019GL086749. <a href=\"https://hdl.handle.net/10.1029/2019GL086749\" target=\"_blank\">https://hdl.handle.net/10.1029/2019GL086749</a>","StandardTitle":"Arctic sea ice in CMIP6","AuthorsString":"Notz, D.; SIMIP Community","BibLvlCode":"AS"},{"BRefID":238127,"RR":"<b>Ilyina, T.; Wolf-Gladrow, D.; Munhoven, G.; Heinze, C.</b> (2013). Assessing the potential of calcium-based artificial ocean alkalinization to mitigate rising atmospheric CO<sub>2</sub> and ocean acidification. <i>Geophys. Res. Lett. 40(22)</i>: 5909-5914. <a href=\"https://dx.doi.org/10.1002/2013GL057981\" target=\"_blank\">https://dx.doi.org/10.1002/2013GL057981</a>","StandardTitle":"Assessing the potential of calcium-based artificial ocean alkalinization to mitigate rising atmospheric CO<sub>2</sub> and ocean acidification","AuthorsString":"Ilyina, T. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":70191,"RR":"<b>Borges, A.V.; Djendi, S.; Lacroix, G.; Théate, J.-M.; Delille, B.; Frankignoulle, M.</b> (2003). Atmospheric CO<sub>2</sub> flux from mangrove surrounding waters. <i>Geophys. Res. Lett. 30(11)</i>: 1-4. <a href=\"http://dx.doi.org/10.1029/2003GL017143\" target=\"_blank\">http://dx.doi.org/10.1029/2003GL017143</a>","StandardTitle":"Atmospheric CO<sub>2</sub> flux from mangrove surrounding waters","AuthorsString":"Borges, A.V. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":349557,"RR":"<b>Nickford, S.; Palter, J.B.; Donohue, K.; Fassbender, A.J.; Gray, A.R.; Long, J.; Sutton, A.J.; Bates, N.R.; Takeshita, Y.</b> (2022). Autonomous wintertime observations of air-sea exchange in the Gulf Stream reveal a perfect storm for ocean CO<sub>2</sub> uptake. <i>Geophys. Res. Lett. 49(5)</i>: e2021GL096805. <a href=\"https://dx.doi.org/10.1029/2021GL096805\" target=\"_blank\">https://dx.doi.org/10.1029/2021GL096805</a>","StandardTitle":"Autonomous wintertime observations of air-sea exchange in the Gulf Stream reveal a perfect storm for ocean CO<sub>2</sub> uptake","AuthorsString":"Nickford, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":238453,"RR":"<b>Close, S.E.; Garabato, A.C.N.</b> (2012). Baroclinic adjustment in Drake Passage driven by tropical Pacific forcing. <i>Geophys. Res. Lett. 39(19)</i>. <a href=\"http://dx.doi.org/10.1029/2012GL053402\" target=\"_blank\">dx.doi.org/10.1029/2012GL053402</a>","StandardTitle":"Baroclinic adjustment in Drake Passage driven by tropical Pacific forcing","AuthorsString":"Close, S.E.; Garabato, A.C.N.","BibLvlCode":"AS"},{"BRefID":391345,"RR":"<b>Marschalek, J.W.; Blard, P.-H.; Sarigulyan, E.; Ehrmann, W.; Hemming, S.R.; Thomson, S.N.; Hillenbrand, C.D.; Licht, K.; Tison, J.-L.; Ardoin, L.; Fripiat, F.; Allen, C.S.; Marrocchi, Y.; Siegert, M.J.; van de Flierdt, T.</b> (2024). Byrd ice core debris constrains the sediment provenance signature of Central West Antarctica. <i>Geophys. Res. Lett. 51(5)</i>: e2023GL106958. <a href=\"https://dx.doi.org/10.1029/2023GL106958\" target=\"_blank\">https://dx.doi.org/10.1029/2023GL106958</a>","StandardTitle":"Byrd ice core debris constrains the sediment provenance signature of Central West Antarctica","AuthorsString":"Marschalek, J.W. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":257817,"RR":"<b>Boudreau, B.; Middelburg, J.; Meysman, F.J.R.</b> (2010). Carbonate compensation dynamics. <i>Geophys. Res. Lett. 37(3)</i>: 5 pp. <a href=\"http://dx.doi.org/10.1029/2009GL041847\" target=\"_blank\">dx.doi.org/10.1029/2009GL041847</a>","StandardTitle":"Carbonate compensation dynamics","AuthorsString":"Boudreau, B. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":362055,"RR":"<b>Docquier, D.; Vannitsem, S.; Ragone, F.; Wyser, K.; Liang, X.S.</b> (2022). Causal links between Arctic sea ice and its potential drivers based on the rate of information transfer. <i>Geophys. Res. Lett. 49(9)</i>: e2021GL095892. <a href=\"https://dx.doi.org/10.1029/2021GL095892\" target=\"_blank\">https://dx.doi.org/10.1029/2021GL095892</a>","StandardTitle":"Causal links between Arctic sea ice and its potential drivers based on the rate of information transfer","AuthorsString":"Docquier, D. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":392913,"RR":"<b>Dörr, J.; Årthun, M.; Docquier, D.; Li, C.; Eldevik, T.</b> (2024). Causal links between sea‐ice variability in the Barents‐Kara Seas and oceanic and atmospheric drivers. <i>Geophys. Res. Lett. 51(7)</i>: e2024GL108195. <a href=\"https://dx.doi.org/10.1029/2024gl108195\" target=\"_blank\">https://dx.doi.org/10.1029/2024gl108195</a>","StandardTitle":"Causal links between sea‐ice variability in the Barents‐Kara Seas and oceanic and atmospheric drivers","AuthorsString":"Dörr, J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":232987,"RR":"<b>Wang, X.L.; Feng, Y.; Swail, V.R.</b> (2014). Changes in global ocean wave heights as projected using multi-model CMIP5 simulations. <i>Geophys. Res. Lett. 41(3)</i>: 1026-1034. <a href=\"https://dx.doi.org/10.1002/2013GL058650\" target=\"_blank\">https://dx.doi.org/10.1002/2013GL058650</a>","StandardTitle":"Changes in global ocean wave heights as projected using multi-model CMIP5 simulations","AuthorsString":"Wang, X.L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":26838,"RR":"<b>Quartly, G.D.; Srokosz, M.A.; Guymer, T.H.</b> (2000). Changes in oceanic precipitation during the 1997-98 El Niño. <i>Geophys. Res. Lett. 27(15)</i>: 2293-2296","StandardTitle":"Changes in oceanic precipitation during the 1997-98 El Niño","AuthorsString":"Quartly, G.D.; Srokosz, M.A.; Guymer, T.H.","BibLvlCode":"AS"},{"BRefID":436369,"RR":"<b>Fu, Y.; Lozier, M.S.; Bower, A.; Burmeister, K.; Carrilho Biló, T.; Cyr, F.; Cunningham, S.A.; DeYoung, B.; Dilmahamod, A.F.; de Jong, M.F.; Fried, N.; Holliday, N.P.; Fraser, N.J.; Johns, W.E.; Li, F.; Karstensen, J.; Pickart, R.S.; Straneo, F.; Yashayaev, I.</b> (2025). Characterizing the interannual variability of North Atlantic subpolar overturning. <i>Geophys. Res. Lett. 52(19)</i>: e2025GL114672. <a href=\"https://dx.doi.org/10.1029/2025gl114672\" target=\"_blank\">https://dx.doi.org/10.1029/2025gl114672</a>","StandardTitle":"Characterizing the interannual variability of North Atlantic subpolar overturning","AuthorsString":"Fu, Y. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":238440,"RR":"<b>Meiners, K.M.; Vancoppenolle, M.; Thanassekos, S.; Dieckmann, G.S.; Thomas, D.N.; Tison, J.-L.; Arrigo, K.R.; Garrison, D.L.; McMinn, A.; Lannuzel, D.; van der Merwe, P.; Swadling, K.M.; Smith, W.O.; Melnikov, I.; Raymond, B.</b> (2012). Chlorophyll <i>a</i> in Antarctic sea ice from historical ice core data. <i>Geophys. Res. Lett. 39(21)</i>: -. <a href=\"http://dx.doi.org/10.1029/2012GL053478\" target=\"_blank\">dx.doi.org/10.1029/2012GL053478</a>","StandardTitle":"Chlorophyll <i>a</i> in Antarctic sea ice from historical ice core data","AuthorsString":"Meiners, K.M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":334005,"RR":"<b>Duyck, E.; de Jong, M.F.</b> (2021). Circulation over the South‐East Greenland Shelf and potential for liquid freshwater export: a drifter study. <i>Geophys. Res. Lett. 48(5)</i>: e2020JB020886. <a href=\"https://doi.org/10.1029/2020gl091948\" target=\"_blank\">https://doi.org/10.1029/2020gl091948</a>","StandardTitle":"Circulation over the South‐East Greenland Shelf and potential for liquid freshwater export: a drifter study","AuthorsString":"Duyck, E.; de Jong, M.F.","BibLvlCode":"AS"},{"BRefID":382847,"RR":"<b>Kochtitzky, W.; Copland, L.; King, M.; Hugonnet, R.; Jiskoot, H.; Morlighem, M.; Millan, R.; Khan, S.A.; Noël, B.</b> (2023). Closing Greenland's mass balance: frontal ablation of every Greenlandic glacier from 2000 to 2020. <i>Geophys. Res. Lett. 50(17)</i>: e2023GL104095. <a href=\"https://dx.doi.org/10.1029/2023GL104095\" target=\"_blank\">https://dx.doi.org/10.1029/2023GL104095</a>","StandardTitle":"Closing Greenland's mass balance: frontal ablation of every Greenlandic glacier from 2000 to 2020","AuthorsString":"Kochtitzky, W. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":318226,"RR":"<b>Nnafie, A.; de Swart, H.; De Maerschalck, B.; Van Oyen, T.; van der Vegt, M.; van der Wegen, M.</b> (2019). Closure of secondary basins causes channel deepening in estuaries with moderate to high friction. <i>Geophys. Res. Lett. 46(22)</i>: 13209-13216. <a href=\"https://dx.doi.org/10.1029/2019gl084444\" target=\"_blank\">https://dx.doi.org/10.1029/2019gl084444</a>","StandardTitle":"Closure of secondary basins causes channel deepening in estuaries with moderate to high friction","AuthorsString":"Nnafie, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":295257,"RR":"<b>Boone, W.; Rysgaard, S.; Carlson, D.F.; Meire, L.; Kirillov, S.; Mortensen, J.; Dmitrenko, I.; Vergeynst, L.; Sejr, M.K.</b> (2018). Coastal freshening prevents fjord bottom water renewal in Northeast Greenland: A mooring study from 2003 to 2015. <i>Geophys. Res. Lett. 45(6)</i>: 2726-2733. <a href=\"https://doi.org/10.1002/2017GL076591\" target=\"_blank\">https://doi.org/10.1002/2017GL076591</a>","StandardTitle":"Coastal freshening prevents fjord bottom water renewal in Northeast Greenland: A mooring study from 2003 to 2015","AuthorsString":"Boone, W. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":332284,"RR":"<b>Schepers, L.; Brennand, P.; Kirwan, M.L.; Guntenspergen, G.R.; Temmerman, S.</b> (2020). Coastal marsh degradation into ponds induces irreversible elevation loss relative to sea level in a microtidal system. <i>Geophys. Res. Lett. 47(18)</i>: e2020GL089121. <a href=\"https://dx.doi.org/10.1029/2020gl089121\" target=\"_blank\">https://dx.doi.org/10.1029/2020gl089121</a>","StandardTitle":"Coastal marsh degradation into ponds induces irreversible elevation loss relative to sea level in a microtidal system","AuthorsString":"Schepers, L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":209194,"RR":"<b>Kida, M.; Khlystov, O.; Zemskaya, T.; Takahashi, N.; Minami, H.; Sakagami, H.; Krylov, A.; Hachikubo, A.; Yamashita, S.; Shoji, H.; Poort, J.; Naudts, L.</b> (2006). Coexistence of structure I and II gas hydrates in Lake Baikal suggesting gas sources from microbial and thermogenic origin. <i>Geophys. Res. Lett. 33(L24603)</i>: 4 PP. <a href=\"http://dx.doi.org/10.1029/2006GL028296\" target=\"_blank\">dx.doi.org/10.1029/2006GL028296</a>","StandardTitle":"Coexistence of structure I and II gas hydrates in Lake Baikal suggesting gas sources from microbial and thermogenic origin","AuthorsString":"Kida, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":321687,"RR":"<b>Hermans, T.; Paepen, M.</b> (2020). Combined inversion of land and marine electrical resistivity tomography for submarine groundwater discharge and saltwater intrusion characterization. <i>Geophys. Res. Lett. 47(3)</i>: e2019GL085877. <a href=\"https://dx.doi.org/10.1029/2019gl085877\" target=\"_blank\">https://dx.doi.org/10.1029/2019gl085877</a>","StandardTitle":"Combined inversion of land and marine electrical resistivity tomography for submarine groundwater discharge and saltwater intrusion characterization","AuthorsString":"Hermans, T.; Paepen, M.","BibLvlCode":"AS"},{"BRefID":362273,"RR":"<b>Person, R.; Vancoppenolle, M.; Aumont, O.; Malsang, M.</b> (2021). Continental and sea ice iron sources fertilize the Southern Ocean in synergy. <i>Geophys. Res. Lett. 48(23)</i>: e2021GL094761. <a href=\"https://dx.doi.org/10.1029/2021GL094761\" target=\"_blank\">https://dx.doi.org/10.1029/2021GL094761</a>","StandardTitle":"Continental and sea ice iron sources fertilize the Southern Ocean in synergy","AuthorsString":"Person, R. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":362736,"RR":"<b>Kaushal, N.; Sanwlani, N.; Tanzil, J.T.I.; Cherukuru, N.; Sahar, S.; Müller, M.; Mujahid, A.; Lee, J.N.; Goodkin, N.F.; Martin, P.</b> (2021). Coral skeletal luminescence records changes in terrestrial chromophoric dissolved organic matter in tropical coastal waters. <i>Geophys. Res. Lett. 48(8)</i>: e2020GL092130. <a href=\"https://dx.doi.org/10.1029/2020GL092130\" target=\"_blank\">https://dx.doi.org/10.1029/2020GL092130</a>","StandardTitle":"Coral skeletal luminescence records changes in terrestrial chromophoric dissolved organic matter in tropical coastal waters","AuthorsString":"Kaushal, N. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":357857,"RR":"<b>Ward, S.N.; Day, S.</b> (2001). Cumbre Vieja Volcano - potential collapse and tsunami at La Palma, Canary Islands. <i>Geophys. Res. Lett. 28(17)</i>: 3397-3400. <a href=\"https://dx.doi.org/10.1029/2001gl013110\" target=\"_blank\">https://dx.doi.org/10.1029/2001gl013110</a>","StandardTitle":"Cumbre Vieja Volcano - potential collapse and tsunami at La Palma, Canary Islands","AuthorsString":"Ward, S.N.; Day, S.","BibLvlCode":"AS"},{"BRefID":205254,"RR":"<b>Kwok, R.; Rothrock, D.A.</b> (2009). Decline in Arctic sea ice thickness from submarine and ICESat records: 1958-2008. <i>Geophys. Res. Lett. 36(L15501)</i>: 5 pp. <a href=\"http://dx.doi.org/10.1029/2009GL039035\" target=\"_blank\">http://dx.doi.org/10.1029/2009GL039035</a>","StandardTitle":"Decline in Arctic sea ice thickness from submarine and ICESat records: 1958-2008","AuthorsString":"Kwok, R.; Rothrock, D.A.","BibLvlCode":"AS"},{"BRefID":352671,"RR":"<b>van der Voort, T.S.; Mannu, U.; Blattmann, T.M.; Bao, R.; Zhao, M.; Eglinton, T.I.</b> (2018). Deconvolving the fate of carbon in coastal sediments. <i>Geophys. Res. Lett. 45(9)</i>: 4134-4142. <a href=\"https://dx.doi.org/10.1029/2018gl077009\" target=\"_blank\">https://dx.doi.org/10.1029/2018gl077009</a>","StandardTitle":"Deconvolving the fate of carbon in coastal sediments","AuthorsString":"van der Voort, T.S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":393229,"RR":"<b>Nelson, M.; Straneo, F.; Purkey, S.G.; de Jong, M.F.</b> (2024). Delayed recovery of the Irminger interior from cooling in 2015 due to widespread buoyancy loss and suppressed restratification. <i>Geophys. Res. Lett. 51(2)</i>: e2023GL106501. <a href=\"https://dx.doi.org/10.1029/2023gl106501\" target=\"_blank\">https://dx.doi.org/10.1029/2023gl106501</a>","StandardTitle":"Delayed recovery of the Irminger interior from cooling in 2015 due to widespread buoyancy loss and suppressed restratification","AuthorsString":"Nelson, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":355602,"RR":"<b>Landschützer, P.; Ilyina, T.; Lovenduski, N.S.</b> (2019). Detecting regional modes of variability in observation-based surface ocean <i>p</i>CO<sub>2</sub>. <i>Geophys. Res. Lett. 46(5)</i>: 2670-2679. <a href=\"https://dx.doi.org/10.1029/2018gl081756\" target=\"_blank\">https://dx.doi.org/10.1029/2018gl081756</a>","StandardTitle":"Detecting regional modes of variability in observation-based surface ocean <i>p</i>CO<sub>2</sub>","AuthorsString":"Landschützer, P.; Ilyina, T.; Lovenduski, N.S.","BibLvlCode":"AS"},{"BRefID":331374,"RR":"<b>Terrats, L.; Claustre, H.; Cornec, M.; Mangin, A.; Neukermans, G.</b> (2020). Detection of coccolithophore blooms With BioGeoChemical‐Argo floats. <i>Geophys. Res. Lett. 47(23)</i>: e2020GL090559. <a href=\"https://dx.doi.org/10.1029/2020gl090559\" target=\"_blank\">https://dx.doi.org/10.1029/2020gl090559</a>","StandardTitle":"Detection of coccolithophore blooms With BioGeoChemical‐Argo floats","AuthorsString":"Terrats, L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":382709,"RR":"<b>Nie, Y.F.; Lin, X.; Yang, Q.H.; Liu, J.P.; Chen, D.; Uotila, P.</b> (2023). Differences between the CMIP5 and CMIP6 Antarctic sea ice concentration budgets. <i>Geophys. Res. Lett. 50(23)</i>: e2023GL105265. <a href=\"https://dx.doi.org/10.1029/2023GL105265\" target=\"_blank\">https://dx.doi.org/10.1029/2023GL105265</a>","StandardTitle":"Differences between the CMIP5 and CMIP6 Antarctic sea ice concentration budgets","AuthorsString":"Nie, Y.F. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":383030,"RR":"<b>Lyu, A.; Yin, Q.Z.; Crucifix, M.; Sun, Y.B.</b> (2021). Diverse regional sensitivity of summer precipitation in East Asia to ice volume, CO<sub>2</sub> and astronomical forcing. <i>Geophys. Res. Lett. 48(7)</i>: e2020GL092005. <a href=\"https://dx.doi.org/10.1029/2020GL092005\" target=\"_blank\">https://dx.doi.org/10.1029/2020GL092005</a>","StandardTitle":"Diverse regional sensitivity of summer precipitation in East Asia to ice volume, CO<sub>2</sub> and astronomical forcing","AuthorsString":"Lyu, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":396677,"RR":"<b>Meng, S.; Webber, B.G.M.; Stevens, D.P.; Joshi, M.; Palmieri, J.; Yool, A.</b> (2024). Diverse responses of upper ocean temperatures to chlorophyll‐induced solar absorption across different coastal upwelling regions. <i>Geophys. Res. Lett. 51(19)</i>: e2024GL109714. <a href=\"https://dx.doi.org/10.1029/2024gl109714\" target=\"_blank\">https://dx.doi.org/10.1029/2024gl109714</a>","StandardTitle":"Diverse responses of upper ocean temperatures to chlorophyll‐induced solar absorption across different coastal upwelling regions","AuthorsString":"Meng, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":356025,"RR":"<b>Bonaccorso, A.; Calvari, S.; Garfì, G.; Lodato, L.; Patanè, D.</b> (2003). Dynamics of the December 2002 flank failure and tsunami at Stromboli volcano inferred by volcanological and geophysical observations. <i>Geophys. Res. Lett. 30(18)</i>: 1941. <a href=\"https://dx.doi.org/10.1029/2003gl017702\" target=\"_blank\">https://dx.doi.org/10.1029/2003gl017702</a>","StandardTitle":"Dynamics of the December 2002 flank failure and tsunami at Stromboli volcano inferred by volcanological and geophysical observations","AuthorsString":"Bonaccorso, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":330736,"RR":"<b>Hennekam, R.; Bolt, B.; van Nes, E.H.; de Lange, G.J.; Scheffer, M.; Reichart, G.-J.</b> (2020). Early‐warning signals for marine anoxic events. <i>Geophys. Res. Lett. 47(20)</i>: e2020GL089183. <a href=\"https://doi.org/10.1029/2020gl089183\" target=\"_blank\">https://doi.org/10.1029/2020gl089183</a>","StandardTitle":"Early‐warning signals for marine anoxic events","AuthorsString":"Hennekam, R. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":363035,"RR":"<b>Molenaar, A.; Moernaut, J.; Wiemer, G.; Dubois, N.; Strasser, M.</b> (2019). Earthquake impact on active margins: tracing surficial remobilization and seismic strengthening in a slope sedimentary sequence. <i>Geophys. Res. Lett. 46(11)</i>: 6015-6023. <a href=\"https://dx.doi.org/10.1029/2019GL082350\" target=\"_blank\">https://dx.doi.org/10.1029/2019GL082350</a>","StandardTitle":"Earthquake impact on active margins: tracing surficial remobilization and seismic strengthening in a slope sedimentary sequence","AuthorsString":"Molenaar, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":221097,"RR":"<b>Dunbar, R.B.; Mudelsee, M.; Vuille, M.; McClanahan, T. R.; Cole, J.E.; Eggins, S.; Fleitmann, D.; McCulloch, M.</b> (2007). East African soil erosion recorded in a 300 year old coral colony from Kenya. <i>Geophys. Res. Lett. 34(4)</i>. <a href=\"http://dx.doi.org/10.1029/2006GL028525\" target=\"_blank\">dx.doi.org/10.1029/2006GL028525</a>","StandardTitle":"East African soil erosion recorded in a 300 year old coral colony from Kenya","AuthorsString":"Dunbar, R.B. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":261646,"RR":"<b>Karatekin, O.; Van Hoolst, T.; Tokano, T</b> (2008). Effect of internal gravitational coupling on Titan's non-synchronous rotation. <i>Geophys. Res. Lett. 35(16)</i>. <a href=\"http://dx.doi.org/10.1029/2008GL034744\" target=\"_blank\">dx.doi.org/10.1029/2008GL034744</a>","StandardTitle":"Effect of internal gravitational coupling on Titan's non-synchronous rotation","AuthorsString":"Karatekin, O. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":363036,"RR":"<b>Vichi, M.; Eayrs, C.; Alberello, A.; Bekker, A.; Bennetts, L.; Holland, D.; de Jong, E.; Joubert, W.; MacHutchon, K.; Messori, G.; Mojica, J.F.; Onorato, M.; Saunders, C.; Skatulla, S.; Toffoli, A.</b> (2019). Effects of an explosive polar cyclone crossing the Antarctic marginal ice zone. <i>Geophys. Res. Lett. 46(11)</i>: 5948-5958. <a href=\"https://dx.doi.org/10.1029/2019GL082457\" target=\"_blank\">https://dx.doi.org/10.1029/2019GL082457</a>","StandardTitle":"Effects of an explosive polar cyclone crossing the Antarctic marginal ice zone","AuthorsString":"Vichi, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":335853,"RR":"<b>Cao, L.; Caldeira, K.; Jain, A.K.</b> (2007). Effects of carbon dioxide and climate change on ocean acidification and carbonate mineral saturation. <i>Geophys. Res. Lett. 34(5)</i>: L05607. <a href=\"https://dx.doi.org/10.1029/2006gl028605\" target=\"_blank\">https://dx.doi.org/10.1029/2006gl028605</a>","StandardTitle":"Effects of carbon dioxide and climate change on ocean acidification and carbonate mineral saturation","AuthorsString":"Cao, L.; Caldeira, K.; Jain, A.K.","BibLvlCode":"AS"},{"BRefID":285442,"RR":"<b>Beuthe, M.; Rivoldini, A.; Trinh, A.</b> (2016). Enceladus's and Dione's floating ice shells supported by minimum stress isostasy. <i>Geophys. Res. Lett. 43(19)</i>: 10088-10096. <a href=\"https://dx.doi.org/10.1002/2016GL070650\" target=\"_blank\">https://dx.doi.org/10.1002/2016GL070650</a>","StandardTitle":"Enceladus's and Dione's floating ice shells supported by minimum stress isostasy","AuthorsString":"Beuthe, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":285570,"RR":"<b>Cadek, O.; Tobie, G.; Van Hoolst, T.; Massé, M.; Choblet, G.; Lefèvre, A.; Mitri, G.; Baland, R.-M.; Behounková, M.; Bourgeois, O.; Trinh, A.</b> (2016). Enceladus's internal ocean and ice shell constrained from Cassini gravity, shape, and libration data. <i>Geophys. Res. Lett. 43(11)</i>: 5653-5660. <a href=\"https://dx.doi.org/10.1002/2016GL068634\" target=\"_blank\">https://dx.doi.org/10.1002/2016GL068634</a>","StandardTitle":"Enceladus's internal ocean and ice shell constrained from Cassini gravity, shape, and libration data","AuthorsString":"Cadek, O. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":199730,"RR":"<b>Lenartz, F.; Mourre, B.; Barth, A.; Beckers, J.-M.; Vandenbulcke, L.; Rixen, M.</b> (2010). Enhanced ocean temperature forecast skills through 3-D super-ensemble multi-model fusion. <i>Geophys. Res. Lett. 37(L19606)</i>. <a href=\"http://dx.doi.org/10.1029/2010GL044591\" target=\"_blank\">dx.doi.org/10.1029/2010GL044591</a>","StandardTitle":"Enhanced ocean temperature forecast skills through 3-D super-ensemble multi-model fusion","AuthorsString":"Lenartz, F. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":338057,"RR":"<b>Alexander, P.M.; Tedesco, M.; Koenig, L.; Fettweis, X.</b> (2019). Evaluating a regional climate model simulation of Greenland ice sheet snow and firn density for improved surface mass balance estimates. <i>Geophys. Res. Lett. 46(21)</i>: 12073-12082. <a href=\"https://hdl.handle.net/10.1029/2019GL084101\" target=\"_blank\">https://hdl.handle.net/10.1029/2019GL084101</a>","StandardTitle":"Evaluating a regional climate model simulation of Greenland ice sheet snow and firn density for improved surface mass balance estimates","AuthorsString":"Alexander, P.M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":257759,"RR":"<b>Laruelle, G.; Durr, H.; Slomp, C.; Borges, A.V.</b> (2010). Evaluation of sinks and sources of CO<sub>2</sub> in the global coastal ocean using a spatially-explicit typology of estuaries and continental shelves. <i>Geophys. Res. Lett. 37(15)</i>. <a href=\"http://dx.doi.org/10.1029/2010GL043691\" target=\"_blank\">dx.doi.org/10.1029/2010GL043691</a>","StandardTitle":"Evaluation of sinks and sources of CO<sub>2</sub> in the global coastal ocean using a spatially-explicit typology of estuaries and continental shelves","AuthorsString":"Laruelle, G. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":215217,"RR":"<b>Francis, J.A.; Vavrus, S.J.</b> (2012). Evidence linking Arctic amplification to extreme weather in mid-latitudes. <i>Geophys. Res. Lett. 39(L06801)</i>: 6 pp. <a href=\"http://dx.doi.org/10.1029/2012GL051000\" target=\"_blank\">http://dx.doi.org/10.1029/2012GL051000</a>","StandardTitle":"Evidence linking Arctic amplification to extreme weather in mid-latitudes","AuthorsString":"Francis, J.A.; Vavrus, S.J.","BibLvlCode":"AS"},{"BRefID":285272,"RR":"<b>Vannitsem, S.; Ghil, M.</b> (2017). Evidence of coupling in ocean-atmosphere dynamics over the North Atlantic. <i>Geophys. Res. Lett. 44(4)</i>: 2016-2026. <a href=\"https://dx.doi.org/10.1002/2016GL072229\" target=\"_blank\">https://dx.doi.org/10.1002/2016GL072229</a>","StandardTitle":"Evidence of coupling in ocean-atmosphere dynamics over the North Atlantic","AuthorsString":"Vannitsem, S.; Ghil, M.","BibLvlCode":"AS"},{"BRefID":417300,"RR":"<b>Liu, Y.; Hu, C.; Hu, Z.; Liao, J.; Liang, M.; Yin, Q.</b> (2025). Extended Duration of Abrupt Climate Events From the Early to Late Holocene. <i>Geophys. Res. Lett. 52(7)</i>. <a href=\"https://dx.doi.org/10.1029/2025GL115543\" target=\"_blank\">https://dx.doi.org/10.1029/2025GL115543</a>","StandardTitle":"Extended Duration of Abrupt Climate Events From the Early to Late Holocene","AuthorsString":"Liu, Y. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":304804,"RR":"<b>Josey, S.A.; de Jong, M.F.; Oltmanns, M.; Moore, G.K.; Weller, R.A.</b> (2019). Extreme variability in Irminger sea winter heat loss revealed by ocean observatories initiative mooring and the ERA5 reanalysis. <i>Geophys. Res. Lett. 46(1)</i>: 293-302. <a href=\"https://dx.doi.org/10.1029/2018GL080956\" target=\"_blank\">https://dx.doi.org/10.1029/2018GL080956</a>","StandardTitle":"Extreme variability in Irminger sea winter heat loss revealed by ocean observatories initiative mooring and the ERA5 reanalysis","AuthorsString":"Josey, S.A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":227686,"RR":"<b>Toffoli, A.; Bitner-Gregersen, E.M.; Osborne, A.R.; Serio, M.; Monbaliu, J.; Onorato, M.</b> (2011). Extreme waves in random crossing seas: laboratory experiments and numerical simulations. <i>Geophys. Res. Lett. 38(6)</i>. <a href=\"http://dx.doi.org/10.1029/2011GL046827\" target=\"_blank\">http://dx.doi.org/10.1029/2011GL046827</a>","StandardTitle":"Extreme waves in random crossing seas: laboratory experiments and numerical simulations","AuthorsString":"Toffoli, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":243965,"RR":"<b>van Haren, H.; Gostiaux, L.; Morozov, E.G.; Tarakanov, R.I.</b> (2014). Extremely long Kelvin-Helmholtz billow trains in the Romanche Fracture Zone. <i>Geophys. Res. Lett. 41(2)</i>: 8445–8451. <a href=\"http://dx.doi.org/10.1002/2014GL062421\" target=\"_blank\">dx.doi.org/10.1002/2014GL062421</a>","StandardTitle":"Extremely long Kelvin-Helmholtz billow trains in the Romanche Fracture Zone","AuthorsString":"van Haren, H. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":209327,"RR":"<b>Krylov, A.; Khlystov, O.; Zemskaya, T.; Minami, H.; Hachikubo, A.; Nunokawa, Y.; Kida, M.; Shoji, H.; Naudts, L.; Poort, J.; Pogodaeva, T.</b> (2008). First discovery and formation process of authigenic siderite from gas hydrate–bearing mud volcanoes in fresh water: Lake Baikal, eastern Siberia. <i>Geophys. Res. Lett. 35(5)</i>: 6 pp. <a href=\"http://dx.doi.org/10.1029/2007GL032917\" target=\"_blank\">dx.doi.org/10.1029/2007GL032917</a>","StandardTitle":"First discovery and formation process of authigenic siderite from gas hydrate–bearing mud volcanoes in fresh water: Lake Baikal, eastern Siberia","AuthorsString":"Krylov, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":221138,"RR":"<b>Nakamura, N.; Kayanne, H.; Iijima, H.; McClanahan, T. R.; Behera, S.K.; Yamagata, T.</b> (2011). Footprints of IOD and ENSO in the Kenyan coral record. <i>Geophys. Res. Lett. 38</i>. <a href=\"http://dx.doi.org/10.1029/2011GL049877\" target=\"_blank\">dx.doi.org/10.1029/2011GL049877</a>","StandardTitle":"Footprints of IOD and ENSO in the Kenyan coral record","AuthorsString":"Nakamura, N. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":382934,"RR":"<b>Blanchard-Wrigglesworth, E.; Bushuk, M.; Massonnet, F.; Hamilton, L.C.; Bitz, C.M.; Meier, W.N.; Bhatt, U.S.</b> (2023). Forecast skill of the Arctic sea ice outlook 2008-2022. <i>Geophys. Res. Lett. 50(6)</i>: e2022GL102531. <a href=\"https://dx.doi.org/10.1029/2022GL102531\" target=\"_blank\">https://dx.doi.org/10.1029/2022GL102531</a>","StandardTitle":"Forecast skill of the Arctic sea ice outlook 2008-2022","AuthorsString":"Blanchard-Wrigglesworth, E. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":329306,"RR":"<b>Groeskamp, S.; LaCasce, J.H.; McDougall, T.J.; Rogé, M.</b> (2020). Full‐depth global estimates of ocean mesoscale eddy mixing from observations and theory. <i>Geophys. Res. Lett. 47(18)</i>: e2020GL089425. <a href=\"https://dx.doi.org/10.1029/2020GL089425\" target=\"_blank\">https://dx.doi.org/10.1029/2020GL089425</a>","StandardTitle":"Full‐depth global estimates of ocean mesoscale eddy mixing from observations and theory","AuthorsString":"Groeskamp, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":417512,"RR":"<b>Coulon, V.; De Rydt, J.; Gregov, T.; Qin, Q.; Pattyn, F.</b> (2024). Future Freshwater Fluxes From the Antarctic Ice Sheet. <i>Geophys. Res. Lett. 51(23)</i>. <a href=\"https://dx.doi.org/10.1029/2024GL111250\" target=\"_blank\">https://dx.doi.org/10.1029/2024GL111250</a>","StandardTitle":"Future Freshwater Fluxes From the Antarctic Ice Sheet","AuthorsString":"Coulon, V. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":353275,"RR":"<b>Payne, A.J.; Nowicki, S.; Abe-Ouchi, A.; Agosta, C.; Alexander, P.; Albrecht, T.; Asay-Davis, X.; Aschwanden, A.; Barthel, A.; Bracegirdle, T.J.; Calov, R.; Chambers, C.; Choi, Y.; Cullather, R.; Cuzzone, J.; Dumas, C.; Edwards, T.L.; Felikson, D.; Fettweis, X.; Galton-Fenzi, B.K.; Goelzer, H.; Gladstone, R.; Golledge, N.R.; Gregory, J.M.; Greve, R.; Hattermann, T.; Hoffman, M.J.; Humbert, A.; Huybrechts, P.; Jourdain, N.C.; Kleiner, T.; Kuipers Munneke, P.; Larour, E.; Le Clec'h, S.; Lee, V.; Leguy, G.; Lipscomb, W.H.; Little, C.M.; Lowry, D.P.; Morlighem, M.; Nias, I.; Pattyn, F.; Pelle, T.; Price, S.F.; Quiquet, A.; Reese, R.; Rückamp, M.; Schlegel, N.-J.; Seroussi, H.; Shepherd, A.; Simon, E.; Slater, D.; Smith, R.S.; Straneo, F.; Sun, S.; Tarasov, L.; Trusel, L.D.; Van Breedam, J.; van de Wal, R.; van den Broeke, M.; Winkelmann, R.; Zhao, C.; Zhang, T.; Zwinger, T.</b> (2021). Future sea level change under coupled model intercomparison project phase 5 and phase 6 scenarios from the Greenland and Antarctic ice sheets. <i>Geophys. Res. Lett. 48(16)</i>: e2020GL091741. <a href=\"https://dx.doi.org/10.1029/2020GL091741\" target=\"_blank\">https://dx.doi.org/10.1029/2020GL091741</a>","StandardTitle":"Future sea level change under coupled model intercomparison project phase 5 and phase 6 scenarios from the Greenland and Antarctic ice sheets","AuthorsString":"Payne, A.J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":252317,"RR":"<b>Boudreau, B.P.; Luo, Y.; Meysman, F.J.R.; Middelburg, J</b> (2015). Gas hydrate dissociation prolongs acidification of the Anthropocene oceans. <i>Geophys. Res. Lett. 42(21)</i>: 9337–9344. <a href=\"http://dx.doi.org/10.1002/2015GL065779\" target=\"_blank\">dx.doi.org/10.1002/2015GL065779</a>","StandardTitle":"Gas hydrate dissociation prolongs acidification of the Anthropocene oceans","AuthorsString":"Boudreau, B.P. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":356124,"RR":"<b>Nomanbhoy, N.; Satake, K.</b> (1995). Generation mechanism of tsunamis from the 1883 Krakatau eruption. <i>Geophys. Res. Lett. 22(4)</i>: 509-512. <a href=\"https://dx.doi.org/10.1029/94gl03219\" target=\"_blank\">https://dx.doi.org/10.1029/94gl03219</a>","StandardTitle":"Generation mechanism of tsunamis from the 1883 Krakatau eruption","AuthorsString":"Nomanbhoy, N.; Satake, K.","BibLvlCode":"AS"},{"BRefID":127160,"RR":"<b>Scambos, T.A.; Bohlander, J.A.; Shuman, C.A.; Skvarca, P.</b> (2004). Glacier acceleration and thinning after ice shelf collapse in the Larsen B embayment, Antarctica. <i>Geophys. Res. Lett. 31</i>: L18402(1-4)","StandardTitle":"Glacier acceleration and thinning after ice shelf collapse in the Larsen B embayment, Antarctica","AuthorsString":"Scambos, T.A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":199619,"RR":"<b>Wada, Y.; van Beek, L.P.H.; van Kempen, C.M.; Reckman, J.W.T.M.; Vasak, S.; Bierkens, M.F.P.</b> (2010). Global depletion of groundwater resources. <i>Geophys. Res. Lett. 37(L20402)</i>: 1-5. <a href=\"http://dx.doi.org/10.1029/2010GL044571\" target=\"_blank\">http://dx.doi.org/10.1029/2010GL044571</a>","StandardTitle":"Global depletion of groundwater resources","AuthorsString":"Wada, Y. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":300897,"RR":"<b>Bellacicco, M.; Volpe, G.; Briggs, N.; Brando, V.; Pitarch, P.; Landolfi, A.; Colella, S.; Marullo, S.; Santoleri, R.</b> (2018). Global distribution of non-algal particles from ocean color data and implications for phytoplankton biomass detection. <i>Geophys. Res. Lett. 45</i>: 7672-7682. <a href=\"https://doi.org/10.1029/2018GL078185\" target=\"_blank\">https://doi.org/10.1029/2018GL078185</a>","StandardTitle":"Global distribution of non-algal particles from ocean color data and implications for phytoplankton biomass detection","AuthorsString":"Bellacicco, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":436987,"RR":"<b>Kusters, N.; Balwada, D.; Groeskamp, S.</b> (2025). Global observational estimates of mesoscale eddy‐driven quasi‐Stokes velocity and buoyancy diffusivity. <i>Geophys. Res. Lett. 52(12)</i>: e2025GL115802. <a href=\"https://dx.doi.org/10.1029/2025gl115802\" target=\"_blank\">https://dx.doi.org/10.1029/2025gl115802</a>","StandardTitle":"Global observational estimates of mesoscale eddy‐driven quasi‐Stokes velocity and buoyancy diffusivity","AuthorsString":"Kusters, N.; Balwada, D.; Groeskamp, S.","BibLvlCode":"AS"},{"BRefID":317911,"RR":"<b>Bellacicco, M.; Cornec, M.; Organelli, E.; Brewin, R.J.W.; Neukermans, G.; Volpe, G.; Barbieux, M.; Poteau, A.; Schmechtig, C.; D'Ortenzio, F.; Marullo, S.; Claustre, H.; Pitarch, J.</b> (2019). Global variability of optical backscattering by non‐algal particles from a biogeochemical‐argo data set. <i>Geophys. Res. Lett. 46(16)</i>: 9767-9776. <a href=\"https://dx.doi.org/10.1029/2019gl084078\" target=\"_blank\">https://dx.doi.org/10.1029/2019gl084078</a>","StandardTitle":"Global variability of optical backscattering by non‐algal particles from a biogeochemical‐argo data set","AuthorsString":"Bellacicco, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":339578,"RR":"<b>van der Sande, W.M.; Roos, P.C.; Gerkema, T.; Hulscher, S.J.M.H.</b> (2021). Gravitational circulation as driver of upstream migration of estuarine sand dunes. <i>Geophys. Res. Lett. 48(14)</i>: e2021GL093337. <a href=\"https://dx.doi.org/10.1029/2021gl093337\" target=\"_blank\">https://dx.doi.org/10.1029/2021gl093337</a>","StandardTitle":"Gravitational circulation as driver of upstream migration of estuarine sand dunes","AuthorsString":"van der Sande, W.M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":201165,"RR":"<b>Bierkens, M.F.P.; van den Hurk, B.J.J.M.</b> (2007). Groundwater convergence as a possible mechanism for multi-year persistence in rainfall. <i>Geophys. Res. Lett. 34(L02402)</i>","StandardTitle":"Groundwater convergence as a possible mechanism for multi-year persistence in rainfall","AuthorsString":"Bierkens, M.F.P.; van den Hurk, B.J.J.M.","BibLvlCode":"AS"},{"BRefID":281482,"RR":"<b>Meire, L.; Meire, P.; Struyf, E.; Krawczyk, D.W.; Arendt, K.E.; Yde, J.C.; Juul-Pedersen, T.; Hopwood, M.J.; Rysgaard, S.; Meysman, F.J.R.</b> (2016). High export of dissolved silica from the Greenland Ice Sheet. <i>Geophys. Res. Lett. 43(17)</i>: 9173-9182. <a href=\"https://dx.doi.org/10.1002/2016GL070191\" target=\"_blank\">https://dx.doi.org/10.1002/2016GL070191</a>","StandardTitle":"High export of dissolved silica from the Greenland Ice Sheet","AuthorsString":"Meire, L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":231108,"RR":"<b>Kim, J.H.; Crosta, X.; Willmott, V.; Renssen, H.; Bonnin, J.; Helmke, P.; Schouten, S.; Sinninghe Damsté, J.S.</b> (2012). Holocene subsurface temperature variability in the eastern Antarctic continental margin. <i>Geophys. Res. Lett. 39</i>. <a href=\"http://dx.doi.org/10.1029/2012GL051157\" target=\"_blank\">dx.doi.org/10.1029/2012GL051157</a>","StandardTitle":"Holocene subsurface temperature variability in the eastern Antarctic continental margin","AuthorsString":"Kim, J.H. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":336958,"RR":"<b>Robinson, J.; Popova, E.E.; Yool, A.; Srokosz, M.; Lampitt, R.S.; Blundell, J.R.</b> (2014). How deep is deep enough? Ocean iron fertilization and carbon sequestration in the Southern Ocean. <i>Geophys. Res. Lett. 41(7)</i>: 2489-2495. <a href=\"https://dx.doi.org/10.1002/2013GL058799\" target=\"_blank\">https://dx.doi.org/10.1002/2013GL058799</a>. <a href=\"https://hdl.handle.net/10.1002/2013gl058799\" target=\"_blank\">https://hdl.handle.net/10.1002/2013gl058799</a>","StandardTitle":"How deep is deep enough? Ocean iron fertilization and carbon sequestration in the Southern Ocean","AuthorsString":"Robinson, J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":199064,"RR":"<b>Gnanadesikan, A.; Emanuel, K.; Vecchi, G.A.; Anderson, W.G.; Hallberg, R.</b> (2010). How ocean color can steer Pacific tropical cyclones. <i>Geophys. Res. Lett. 37</i>: L18802. <a href=\"http://dx.doi.org/10.1029/2010GL044514\" target=\"_blank\">http://dx.doi.org/10.1029/2010GL044514</a>","StandardTitle":"How ocean color can steer Pacific tropical cyclones","AuthorsString":"Gnanadesikan, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":355862,"RR":"<b>Ardhuin, F.; Gualtieri, L.; Stutzmann, E.</b> (2015). How ocean waves rock the Earth: Two mechanisms explain microseisms with periods 3 to 300 s. <i>Geophys. Res. Lett. 42(3)</i>: 765-772. <a href=\"https://dx.doi.org/10.1002/2014GL062782\" target=\"_blank\">https://dx.doi.org/10.1002/2014GL062782</a>","StandardTitle":"How ocean waves rock the Earth: Two mechanisms explain microseisms with periods 3 to 300 s","AuthorsString":"Ardhuin, F.; Gualtieri, L.; Stutzmann, E.","BibLvlCode":"AS"},{"BRefID":417382,"RR":"<b>Lu, X.; Sole, A.; Livingstone, S.J.; Cheng, G.; Jiang, L.M.; Chudley, T.; Noël, B.; Li, D.</b> (2025). Ice Thickness-Induced Variations in Effective Pressure and Basal Conditions Influence Seasonal and Multi-Annual Ice Velocity at Sermeq Kujalleq (Jakobshavn Isbræ). <i>Geophys. Res. Lett. 52(4)</i>. <a href=\"https://dx.doi.org/10.1029/2024GL111092\" target=\"_blank\">https://dx.doi.org/10.1029/2024GL111092</a>","StandardTitle":"Ice Thickness-Induced Variations in Effective Pressure and Basal Conditions Influence Seasonal and Multi-Annual Ice Velocity at Sermeq Kujalleq (Jakobshavn Isbræ)","AuthorsString":"Lu, X. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":350020,"RR":"<b>Duinen, B.; Kaandorp, M.L.A.; van Sebille, E.</b> (2022). Identifying marine sources of beached plastics through a Bayesian framework: Application to southwest Netherlands. <i>Geophys. Res. Lett. 49(4)</i>: e2021GL097214. <a href=\"https://dx.doi.org/10.1029/2021gl097214\" target=\"_blank\">https://dx.doi.org/10.1029/2021gl097214</a>","StandardTitle":"Identifying marine sources of beached plastics through a Bayesian framework: Application to southwest Netherlands","AuthorsString":"Duinen, B.; Kaandorp, M.L.A.; van Sebille, E.","BibLvlCode":"AS"},{"BRefID":144833,"RR":"<b>Gazeau, F.; Quiblier, C.; Jansen, J.M.; Gattuso, J.P.; Middelburg, J.J.; Heip, C.H.R.</b> (2007). Impact of elevated CO<sub>2</sub> on shellfish calcification. <i>Geophys. Res. Lett. 34(7)</i>: L07603. <a href=\"https://dx.doi.org/10.1029/2006GL028554\" target=\"_blank\">https://dx.doi.org/10.1029/2006GL028554</a>","StandardTitle":"Impact of elevated CO<sub>2</sub> on shellfish calcification","AuthorsString":"Gazeau, F. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":231126,"RR":"<b>Temmerman, S.; Moonen, P.; Schoelynck, J.; Govers, G.; Bouma, T.J.</b> (2012). Impact of vegetation die-off on spatial flow patterns over a tidal marsh. <i>Geophys. Res. Lett. 39(L03406)</i>: 5 pp. <a href=\"http://dx.doi.org/10.1029/2011GL050502\" target=\"_blank\">dx.doi.org/10.1029/2011GL050502</a>","StandardTitle":"Impact of vegetation die-off on spatial flow patterns over a tidal marsh","AuthorsString":"Temmerman, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":335911,"RR":"<b>González, M.F.; Ilyina, T.</b> (2016). Impacts of artificial ocean alkalinization on the carbon cycle and climate in Earth system simulations. <i>Geophys. Res. Lett. 43(12)</i>: 6493-6502. <a href=\"https://dx.doi.org/10.1002/2016gl068576\" target=\"_blank\">https://dx.doi.org/10.1002/2016gl068576</a>","StandardTitle":"Impacts of artificial ocean alkalinization on the carbon cycle and climate in Earth system simulations","AuthorsString":"González, M.F.; Ilyina, T.","BibLvlCode":"AS"},{"BRefID":367703,"RR":"<b>Li, F.; Newman, P.A.; Waugh, D.W.</b> (2023). Impacts of stratospheric ozone recovery on Southern Ocean temperature and heat budget. <i>Geophys. Res. Lett. 50(18)</i>: e2023GL103951. <a href=\"https://dx.doi.org/10.1029/2023gl103951\" target=\"_blank\">https://dx.doi.org/10.1029/2023gl103951</a>","StandardTitle":"Impacts of stratospheric ozone recovery on Southern Ocean temperature and heat budget","AuthorsString":"Li, F.; Newman, P.A.; Waugh, D.W.","BibLvlCode":"AS"},{"BRefID":303665,"RR":"<b>Valk, O.; Rutgers van der Loeff, M.M.; Geibert, W.; Gdaniec, S.; Rijkenberg, M.J.A.; Moran, S.B.; Lepore, K.; Edwards, R.L.; Lu, Y.; Puigcorbé, V.</b> (2018). Importance of hydrothermal vents in scavenging removal of <sup>230</sup>Th in the Nansen Basin. <i>Geophys. Res. Lett. 45(19)</i>: 10,539-10,548. <a href=\"https://doi.org/10.1029/2018GL079829\" target=\"_blank\">https://doi.org/10.1029/2018GL079829</a>","StandardTitle":"Importance of hydrothermal vents in scavenging removal of <sup>230</sup>Th in the Nansen Basin","AuthorsString":"Valk, O. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":362754,"RR":"<b>Borchert, L.F.; Menary, M.B.; Swingedouw, D.; Sgubin, G.; Hermanson, L.; Mignot, J.</b> (2021). Improved decadal predictions of North Atlantic subpolar gyre SST in CMIP6. <i>Geophys. Res. Lett. 48(3)</i>: e2020GL091307. <a href=\"https://dx.doi.org/10.1029/2020GL091307\" target=\"_blank\">https://dx.doi.org/10.1029/2020GL091307</a>","StandardTitle":"Improved decadal predictions of North Atlantic subpolar gyre SST in CMIP6","AuthorsString":"Borchert, L.F. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":257854,"RR":"<b>Goosse, H.; Arzel, O.; Bitz, C.; de Montety, A.; Vancoppenolle, M.</b> (2009). Increased variability of the Arctic summer ice extent in a warmer climate. <i>Geophys. Res. Lett. 36(23)</i>. <a href=\"http://dx.doi.org/10.1029/2009GL040546\" target=\"_blank\">dx.doi.org/10.1029/2009GL040546</a>","StandardTitle":"Increased variability of the Arctic summer ice extent in a warmer climate","AuthorsString":"Goosse, H. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":121921,"RR":"<b>Perovich, D.K.; Light, B.; Eicken, H.; Jones, K.F.; Runciman, K.; Nghiem, S.V.</b> (2007). Increasing solar heating of the Arctic Ocean and adjacent seas, 1979-2005: attribution and role in the ice-albedo feedback. <i>Geophys. Res. Lett. 34(19)</i>: L19505 (1-5). <a href=\"http://dx.doi.org/10.1029/2007GL031480\" target=\"_blank\">http://dx.doi.org/10.1029/2007GL031480</a>","StandardTitle":"Increasing solar heating of the Arctic Ocean and adjacent seas, 1979-2005: attribution and role in the ice-albedo feedback","AuthorsString":"Perovich, D.K. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":221102,"RR":"<b>Kayanne, H.; Iijima, H.; Nakamura, N.; McClanahan, T. R.; Behera, S.; Yamagata, T.</b> (2006). Indian Ocean Dipole index recorded in Kenyan coral annual density bands. <i>Geophys. Res. Lett. 33(19)</i>. <a href=\"http://dx.doi.org/10.1029/2006GL027168\" target=\"_blank\">dx.doi.org/10.1029/2006GL027168</a>","StandardTitle":"Indian Ocean Dipole index recorded in Kenyan coral annual density bands","AuthorsString":"Kayanne, H. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":198425,"RR":"<b>Bernie, D.; Lowe, J.; Tyrrell, T.; Legge, O.</b> (2010). Influence of mitigation policy on ocean acidification. <i>Geophys. Res. Lett. 37(L15704)</i>: 1-5. <a href=\"https://dx.doi.org/10.1029/2010GL043181\" target=\"_blank\">https://dx.doi.org/10.1029/2010GL043181</a>","StandardTitle":"Influence of mitigation policy on ocean acidification","AuthorsString":"Bernie, D. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":355884,"RR":"<b>Vrecica, T.; Soffer, R.; Toledo, Y.</b> (2019). Infragravity wave generation by wind gusts. <i>Geophys. Res. Lett. 46(16)</i>: 9728-9738. <a href=\"https://dx.doi.org/10.1029/2019gl084241\" target=\"_blank\">https://dx.doi.org/10.1029/2019gl084241</a>","StandardTitle":"Infragravity wave generation by wind gusts","AuthorsString":"Vrecica, T.; Soffer, R.; Toledo, Y.","BibLvlCode":"AS"},{"BRefID":260422,"RR":"<b>van Haren, H.; Cimatoribus, A.; Cyr, F.; Gostiaux, L.</b> (2016). Insights from a 3-D temperature sensors mooring on stratiﬁed ocean turbulence. <i>Geophys. Res. Lett. 43</i>: 4483-4489. <a href=\"http://dx.doi.org/10.1002/2016GL068032\" target=\"_blank\">dx.doi.org/10.1002/2016GL068032</a>","StandardTitle":"Insights from a 3-D temperature sensors mooring on stratiﬁed ocean turbulence","AuthorsString":"van Haren, H. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":256696,"RR":"<b>Chikamoto, M.; Timmermann, A.; Yoshimori, M.; Lehner, F.; Laurian, A.; Abe-Ouchi, A.; Mouchet, A.; Joos, F.; Raible, C.; Cobb, K.</b> (2016). Intensification of tropical Pacific biological productivity due to volcanic eruptions. <i>Geophys. Res. Lett. 43(3)</i>: 1184-1192. <a href=\"https://dx.doi.org/10.1002/2015GL067359\" target=\"_blank\">https://dx.doi.org/10.1002/2015GL067359</a>","StandardTitle":"Intensification of tropical Pacific biological productivity due to volcanic eruptions","AuthorsString":"Chikamoto, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":206660,"RR":"<b>Sharples, J.; Moore, M.; Hickman, A.E.; Holligan, P.M.; Tweddle, J.F.; Palmer, M.R.; Simpson, J.H.</b> (2009). Internal tidal mixing as a control on continental margin ecosystems. <i>Geophys. Res. Lett. 36(L23603)</i>: 1-5. <a href=\"http://dx.doi.org/10.1029/2009GL040683\" target=\"_blank\">dx.doi.org/10.1029/2009GL040683</a>","StandardTitle":"Internal tidal mixing as a control on continental margin ecosystems","AuthorsString":"Sharples, J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":336162,"RR":"<b>Palmer, M.D.; Haines, K.; Tett, S.F.B.; Ansell, T.J.</b> (2007). Isolating the signal of ocean global warming. <i>Geophys. Res. Lett. 34(23)</i>: L23610. <a href=\"https://dx.doi.org/10.1029/2007gl031712\" target=\"_blank\">https://dx.doi.org/10.1029/2007gl031712</a>","StandardTitle":"Isolating the signal of ocean global warming","AuthorsString":"Palmer, M.D. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":231218,"RR":"<b>van Haren, H.; Gostiaux, L.</b> (2011). Large internal waves advection in very weakly stratified deep Mediterranean waters. <i>Geophys. Res. Lett. 38</i>. <a href=\"http://dx.doi.org/10.1029/2011GL049707\" target=\"_blank\">dx.doi.org/10.1029/2011GL049707</a>","StandardTitle":"Large internal waves advection in very weakly stratified deep Mediterranean waters","AuthorsString":"van Haren, H.; Gostiaux, L.","BibLvlCode":"AS"},{"BRefID":437184,"RR":"<b>Ruan, Y.; Mohtadi, M.; Dupont, L.; Hebbeln, D.; van der Kaars, S.; Chen, W.; Hopmans, E.C.; Schouten, S.; Prange, M.; Hefter, J.; Mollenhauer, G.; Schefuß, E.</b> (2025). Late Holocene human impact on tropical soil erosion in the maritime continent. <i>Geophys. Res. Lett. 52(15)</i>: e2025GL114695. <a href=\"https://dx.doi.org/10.1029/2025gl114695\" target=\"_blank\">https://dx.doi.org/10.1029/2025gl114695</a>","StandardTitle":"Late Holocene human impact on tropical soil erosion in the maritime continent","AuthorsString":"Ruan, Y. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":296082,"RR":"<b>Rambaux, N.; Castillo-Rogez, J.C.; Williams, J.G.; Karatekin, O.</b> (2010). Librational response of Enceladus. <i>Geophys. Res. Lett. 37</i>: 5. <a href=\"https://dx.doi.org/10.1029/2009GL041465\" target=\"_blank\">https://dx.doi.org/10.1029/2009GL041465</a>","StandardTitle":"Librational response of Enceladus","AuthorsString":"Rambaux, N. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":257726,"RR":"<b>Kirwan, M.; Guntenspergen, G.; D'Alpaos, A.; Morris, J.; Mudd, S.; Temmerman, S.</b> (2010). Limits on the adaptability of coastal marshes to rising sea level. <i>Geophys. Res. Lett. 37(23)</i>. <a href=\"http://dx.doi.org/10.1029/2010GL045489\" target=\"_blank\">dx.doi.org/10.1029/2010GL045489</a>","StandardTitle":"Limits on the adaptability of coastal marshes to rising sea level","AuthorsString":"Kirwan, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":337939,"RR":"<b>Acosta Navarro, J.C.; Ortega, P.; Batté, L.; Smith, D.; Bretonnière, P.A.; Guemas, V.; Massonnet, F.; Sicardi, V.; Torralba, V.; Tourigny, E.; Doblas-Reyes, F.J.</b> (2020). Link between autumnal Arctic sea ice and northern hemisphere winter forecast skill. <i>Geophys. Res. Lett. 47(5)</i>: e2019GL086753. <a href=\"https://hdl.handle.net/10.1029/2019GL086753\" target=\"_blank\">https://hdl.handle.net/10.1029/2019GL086753</a>","StandardTitle":"Link between autumnal Arctic sea ice and northern hemisphere winter forecast skill","AuthorsString":"Acosta Navarro, J.C. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":437472,"RR":"<b>Peng, F.; Toonen, W.; Yang, X.; Hennekam, R.; van Leeuwen, N.; Rip, S.; Kasse, C.</b> (2025). Lower Meuse paleoflood record reveals NAO‐driven decadal to multi‐centennial variability. <i>Geophys. Res. Lett. 52(18)</i>: e2025GL117862. <a href=\"https://dx.doi.org/10.1029/2025gl117862\" target=\"_blank\">https://dx.doi.org/10.1029/2025gl117862</a>","StandardTitle":"Lower Meuse paleoflood record reveals NAO‐driven decadal to multi‐centennial variability","AuthorsString":"Peng, F. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":242397,"RR":"<b>Snik, F.; Rietjens, J.H.H.; Apituley, A.; Volten, H.; Mijling, B.; Di Noia, A.; Heikamp, S.; Heinsbroek, R.C.; Hasekamp, O.P.; Smit. , J.M.; Vonk, J.; Stam, D.M.; van Harten, G.; de Boer, J.; Keller, C.U.; iSPEX citizen scientists; Stuut, J.B.W.; Wernand, M.R.; Philippart, C.J.M.</b> (2014). Mapping atmospheric aerosols with a citizen science network of smartphone spectropolarimeters. <i>Geophys. Res. Lett. 41(20)</i>: 7351–7358. <a href=\"http://dx.doi.org/10.1002/2014GL061462\" target=\"_blank\">http://dx.doi.org/10.1002/2014GL061462</a>","StandardTitle":"Mapping atmospheric aerosols with a citizen science network of smartphone spectropolarimeters","AuthorsString":"Snik, F. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":238332,"RR":"<b>Dierckx, M.; Tison, J.-L.</b> (2013). Marine ice deformation experiments: an empirical validation of creep parameters. <i>Geophys. Res. Lett. 40(1)</i>: 134-138. <a href=\"http://dx.doi.org/10.1029/2012GL054197\" target=\"_blank\">dx.doi.org/10.1029/2012GL054197</a>","StandardTitle":"Marine ice deformation experiments: an empirical validation of creep parameters","AuthorsString":"Dierckx, M.; Tison, J.-L.","BibLvlCode":"AS"},{"BRefID":347261,"RR":"<b>Hu, Z.; Borsje, B.W.; van Belzen, J.; Willemsen, P.W.J.M.; Wang, H.; Peng, Y.; Yuan, L.; De Dominicis, M.; Wolf, J.; Temmerman, S.; Bouma, T.J.</b> (2021). Mechanistic modeling of marsh seedling establishment provides a positive outlook for coastal wetland restoration under global climate change. <i>Geophys. Res. Lett. 48(22)</i>: e2021GL095596. <a href=\"https://dx.doi.org/10.1029/2021gl095596\" target=\"_blank\">https://dx.doi.org/10.1029/2021gl095596</a>","StandardTitle":"Mechanistic modeling of marsh seedling establishment provides a positive outlook for coastal wetland restoration under global climate change","AuthorsString":"Hu, Z. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":337854,"RR":"<b>Beuthe, M.; Charlier, B.; Namur, O.; Rivoldini, A.; Van Hoolst, T.</b> (2020). Mercury's crustal thickness correlates with lateral variations in mantle melt production. <i>Geophys. Res. Lett. 47(9)</i>: e2020GL087261. <a href=\"https://hdl.handle.net/10.1029/2020GL087261\" target=\"_blank\">https://hdl.handle.net/10.1029/2020GL087261</a>","StandardTitle":"Mercury's crustal thickness correlates with lateral variations in mantle melt production","AuthorsString":"Beuthe, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":213778,"RR":"<b>Song, Y.T.; Fukumori, I.; Shum, C.K.; Yi, Yuchan</b> (2012). Merging tsunamis of the 2011 Tohoku-Oki earthquake detected over the open ocean. <i>Geophys. Res. Lett. 39</i>: L05606. <a href=\"http://dx.doi.org/10.1029/2011GL050767\" target=\"_blank\">http://dx.doi.org/10.1029/2011GL050767</a>","StandardTitle":"Merging tsunamis of the 2011 Tohoku-Oki earthquake detected over the open ocean","AuthorsString":"Song, Y.T. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":255284,"RR":"<b>Hunter, W.R.; Niederdorfer, R.; Gernand, A.; Veuger, B.; Prommer, J.; Mooshammer, M.; Wanek, W.; Battin, T.J.</b> (2016). Metabolism of mineral-sorbed organic matter and microbial lifestyles in fluvial ecosystems. <i>Geophys. Res. Lett. 43(4)</i>: 1582-1588. <a href=\"http://dx.doi.org/10.1002/2016GL067719\" target=\"_blank\">dx.doi.org/10.1002/2016GL067719</a>","StandardTitle":"Metabolism of mineral-sorbed organic matter and microbial lifestyles in fluvial ecosystems","AuthorsString":"Hunter, W.R. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":224494,"RR":"<b>Nakamura, N.; Kayanne, H.; Ijima, H.; McClanahan, T. R.; Behera, S. K.; Yamagata, T.</b> (2009). Mode shift in the Indian Ocean climate under global warming stress. <i>Geophys. Res. Lett. 36</i>: 5. <a href=\"https://dx.doi.org/10.1029/2009GL040590\" target=\"_blank\">https://dx.doi.org/10.1029/2009GL040590</a>","StandardTitle":"Mode shift in the Indian Ocean climate under global warming stress","AuthorsString":"Nakamura, N. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":209166,"RR":"<b>Hachikubo, A.; Khlystov, O.; Manakov, A.; Kida, M.; Krylov, A.; Sakagami, H.; Minami, H.; Takahashi, N.; Shoji, H.; Kalmychkov, G.; Poort, J.</b> (2009). Model of formation of double structure gas hydrates in Lake Baikal based on isotopic data. <i>Geophys. Res. Lett. 36(L18504)</i>: 5. <a href=\"http://dx.doi.org/10.1029/2009GL039805\" target=\"_blank\">dx.doi.org/10.1029/2009GL039805</a>","StandardTitle":"Model of formation of double structure gas hydrates in Lake Baikal based on isotopic data","AuthorsString":"Hachikubo, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":255759,"RR":"<b>Dam, G.; Van der Wegen, M.; Labeur, R.J.; Roelvink, D.</b> (2016). Modeling centuries of estuarine morphodynamics in the Western Scheldt estuary. <i>Geophys. Res. Lett. 43(8)</i>: 3839-3847. <a href=\"http://dx.doi.org/10.1002/2015GL066725\" target=\"_blank\">http://dx.doi.org/10.1002/2015GL066725</a>","StandardTitle":"Modeling centuries of estuarine morphodynamics in the Western Scheldt estuary","AuthorsString":"Dam, G. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":338049,"RR":"<b>Shi, F.; Goosse, H.; Klein, F.; Zhao, S.; Liu, T.; Guo, Z.</b> (2019). Monopole mode of precipitation in East Asia modulated by the South China Sea over the last four centuries. <i>Geophys. Res. Lett. 46(24)</i>: 14713-14722. <a href=\"https://hdl.handle.net/10.1029/2019GL085320\" target=\"_blank\">https://hdl.handle.net/10.1029/2019GL085320</a>","StandardTitle":"Monopole mode of precipitation in East Asia modulated by the South China Sea over the last four centuries","AuthorsString":"Shi, F. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":417704,"RR":"<b>Dalaiden, Q.; Abram, N.J.; Goosse, H.; Holland, P.R.; O'Connor, G.K.; Topál, D.</b> (2024). Multi-Decadal Variability of Amundsen Sea Low Controlled by Natural Tropical and Anthropogenic Drivers. <i>Geophys. Res. Lett. 51(16)</i>. <a href=\"https://dx.doi.org/10.1029/2024GL109137\" target=\"_blank\">https://dx.doi.org/10.1029/2024GL109137</a>","StandardTitle":"Multi-Decadal Variability of Amundsen Sea Low Controlled by Natural Tropical and Anthropogenic Drivers","AuthorsString":"Dalaiden, Q. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":335776,"RR":"<b>Achterberg, E.P.; Moore, C.M.; Henson, S.A.; Steigenberger, S.; Stohl, A.; Eckhardt, S.; Avendano, L.C.; Cassidy, M.; Hembury, D.; Klar, J.K.; Lucas, M.I.; Macey, A.I.; Marsay, C.M.; Ryan-Keogh, T.J.</b> (2013). Natural iron fertilization by the Eyjafjallajökull volcanic eruption. <i>Geophys. Res. Lett. 40(5)</i>: 921-926. <a href=\"https://dx.doi.org/10.1002/grl.50221\" target=\"_blank\">https://dx.doi.org/10.1002/grl.50221</a>","StandardTitle":"Natural iron fertilization by the Eyjafjallajökull volcanic eruption","AuthorsString":"Achterberg, E.P. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":362749,"RR":"<b>Aouf, L.; Hauser, D.; Chapron, B.; Toffoli, A.; Tourain, C.; Peureux, C.</b> (2021). New directional wave satellite observations: towards improved wave forecasts and climate description in Southern Ocean. <i>Geophys. Res. Lett. 48(5)</i>: e2020GL091187. <a href=\"https://dx.doi.org/10.1029/2020GL091187\" target=\"_blank\">https://dx.doi.org/10.1029/2020GL091187</a>","StandardTitle":"New directional wave satellite observations: towards improved wave forecasts and climate description in Southern Ocean","AuthorsString":"Aouf, L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":30431,"RR":"<b>Loutre, M.F.; Berger, A.</b> (2000). No glacial-interglacial cycle in the ice volume simulated under a constant astronomical forcing and a variable CO<sub>2</sub>. <i>Geophys. Res. Lett. 27(6)</i>: 783-786. <a href=\"https://dx.doi.org/10.1029/1999GL006081\" target=\"_blank\">https://dx.doi.org/10.1029/1999GL006081</a>","StandardTitle":"No glacial-interglacial cycle in the ice volume simulated under a constant astronomical forcing and a variable CO<sub>2</sub>","AuthorsString":"Loutre, M.F.; Berger, A.","BibLvlCode":"AS"},{"BRefID":337609,"RR":"<b>Ding, J.; van der A, R.J.; Eskes, H.J.; Mijling, B.; Stavrakou, T.; van Geffen, J.H.G.M.; Veefkind, J.P.</b> (2020). NO<sub>x</sub> emissions reduction and rebound in China due to the COVID-19 crisis. <i>Geophys. Res. Lett. 47(19)</i>: e2020GL089912. <a href=\"https://hdl.handle.net/10.1029/2020GL089912\" target=\"_blank\">https://hdl.handle.net/10.1029/2020GL089912</a>","StandardTitle":"NO<sub>x</sub> emissions reduction and rebound in China due to the COVID-19 crisis","AuthorsString":"Ding, J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":368661,"RR":"<b>Berglund, S.; Döös, K.; Groeskamp, S.; McDougall, T.J.</b> (2023). North Atlantic Ocean Circulation and Related Exchange of Heat and Salt Between Water Masses. <i>Geophys. Res. Lett. 50(13)</i>: e2022GL100989. <a href=\"https://dx.doi.org/10.1029/2022gl100989\" target=\"_blank\">https://dx.doi.org/10.1029/2022gl100989</a>","StandardTitle":"North Atlantic Ocean Circulation and Related Exchange of Heat and Salt Between Water Masses","AuthorsString":"Berglund, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":407894,"RR":"<b>Dalman, L.A.; Meiners, K.M.; Thomas, D.N.; Deman, F.; Bestley, S.; Moreau, S.; Arrigo, K.R.; Campbell, K.; Corkill, M.; Cozzi, S.; Delille, B.; Fransson, A.; Fraser, A.D.; Henley, S.F.; Janssens, J.; Lannuzel, D.; Munro, D.R.; Nomura, D.; Norman, L.; Papadimitriou, S.; Schallenberg, C.; Tison, J.-L.; Vancoppenolle, M.; van der Merwe, P.; Fripiat, F.</b> (2025). Observation‐based estimate of net community production in Antarctic sea ice. <i>Geophys. Res. Lett. 52(7)</i>: e2024GL113717. <a href=\"https://dx.doi.org/10.1029/2024gl113717\" target=\"_blank\">https://dx.doi.org/10.1029/2024gl113717</a>","StandardTitle":"Observation‐based estimate of net community production in Antarctic sea ice","AuthorsString":"Dalman, L.A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":355609,"RR":"<b>Ritter, R.; Landschützer, P.; Gruber, N.; Fay, A.R.; Iida, Y.; Jones, S.; Nakaoka, S.; Park, G.-H.; Peylin, P.; Rodenbeck, C.; Rodgers, K.B.; Shutler, J.D.; Zeng, J.</b> (2017). Observation‐based trends of the Southern Ocean carbon sink. <i>Geophys. Res. Lett. 44(24)</i>: 12339-12348. <a href=\"https://dx.doi.org/10.1002/2017gl074837\" target=\"_blank\">https://dx.doi.org/10.1002/2017gl074837</a>","StandardTitle":"Observation‐based trends of the Southern Ocean carbon sink","AuthorsString":"Ritter, R. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":230846,"RR":"<b>Xie, X.; Shang, X.; van Haren, H.; Chen, G.</b> (2013). Observations of enhanced nonlinear instability in the surface reflection of internal tides. <i>Geophys. Res. Lett. 40(8)</i>: 1580-1586. <a href=\"http://dx.doi.org/10.1002/grl.50322\" target=\"_blank\">dx.doi.org/10.1002/grl.50322</a>","StandardTitle":"Observations of enhanced nonlinear instability in the surface reflection of internal tides","AuthorsString":"Xie, X. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":363168,"RR":"<b>McCluskey, C.S.; Hill, T.C.J.; Humphries, R.S.; Rauker, A.M.; Moreau, S.; Strutton, P.G.; Chambers, S.D.; Williams, A.G.; McRobert, I.; Ward, J.; Keywood, M.D.; Harnwell, J.; Ponsonby, W.; Loh, Z.M.; Krummel, P.B.; Protat, A.; Kreidenweis, S.M.; DeMott, P.J.</b> (2018). Observations of ice nucleating particles over Southern Ocean waters. <i>Geophys. Res. Lett. 45(21)</i>: 11989-11997. <a href=\"https://dx.doi.org/10.1029/2018GL079981\" target=\"_blank\">https://dx.doi.org/10.1029/2018GL079981</a>","StandardTitle":"Observations of ice nucleating particles over Southern Ocean waters","AuthorsString":"McCluskey, C.S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":358979,"RR":"<b>Sheremet, A.; Staples, T.; Ardhuin, F.; Suanez, S.; Fichaut, B.</b> (2014). Observations of large infragravity wave runup at Banneg Island, France. <i>Geophys. Res. Lett. 41(3)</i>: 976-982. <a href=\"https://dx.doi.org/10.1002/2013gl058880\" target=\"_blank\">https://dx.doi.org/10.1002/2013gl058880</a>","StandardTitle":"Observations of large infragravity wave runup at Banneg Island, France","AuthorsString":"Sheremet, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":231349,"RR":"<b>Xie, X.H.; Shang, X.D.; van Haren, H.; Chen, G.Y.; Zhang, Y.Z.</b> (2011). Observations of parametric subharmonic instability-induced near-inertialwaves equatorward of the critical diurnal latitude. <i>Geophys. Res. Lett. 38</i>. <a href=\"http://dx.doi.org/10.1029/2010GL046521\" target=\"_blank\">dx.doi.org/10.1029/2010GL046521</a>","StandardTitle":"Observations of parametric subharmonic instability-induced near-inertialwaves equatorward of the critical diurnal latitude","AuthorsString":"Xie, X.H. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":121870,"RR":"<b>Howell, E.A.; Abecassis, M.</b> (2008). Ocean's least productive waters are expanding. <i>Geophys. Res. Lett. 35(3)</i>: L03618 (1-5). <a href=\"http://dx.doi.org/10.1029/2007GL031745\" target=\"_blank\">http://dx.doi.org/10.1029/2007GL031745</a>","StandardTitle":"Ocean's least productive waters are expanding","AuthorsString":"Howell, E.A.; Abecassis, M.","BibLvlCode":"AS"},{"BRefID":240846,"RR":"<b>Magalhaes, J.M.; da Silva, J.C.B.; Batista, M.; Gostiaux, L.; Gerkema, T.; New, A.L.; Jeans, D.R.G.</b> (2013). On the detectability of internal waves by an imaging lidar. <i>Geophys. Res. Lett. 40(13)</i>: 3429–3434. <a href=\"http://dx.doi.org/10.1002/grl.50669\" target=\"_blank\">http://dx.doi.org/10.1002/grl.50669</a>","StandardTitle":"On the detectability of internal waves by an imaging lidar","AuthorsString":"Magalhaes, J.M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":254928,"RR":"<b>Cyr, F.; van Haren, H.; Mienis, F.; Duineveld, G.; Bourgault, D.</b> (2016). On the influence of cold-water coral mound size on flow hydrodynamics, and vice versa. <i>Geophys. Res. Lett. 43</i>: 775-783. <a href=\"http://dx.doi.org/10.1002/2015GL067038\" target=\"_blank\">dx.doi.org/10.1002/2015GL067038</a>","StandardTitle":"On the influence of cold-water coral mound size on flow hydrodynamics, and vice versa","AuthorsString":"Cyr, F. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":56611,"RR":"<b>da Silva, J.C.B.; New, A.L.; Srokosz, M.A.; Smyth, J.A.</b> (2002). On the observability of internal tidal waves in remotely-sensed ocean colour data. <i>Geophys. Res. Lett. 29(12)</i>: 10(1-4)","StandardTitle":"On the observability of internal tidal waves in remotely-sensed ocean colour data","AuthorsString":"da Silva, J.C.B. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":102791,"RR":"<b>Vancoppenolle, M.; Fichefet, T.; Bitz, C.M.</b> (2005). On the sensitivity of undeformed Arctic sea ice to its vertical salinity profile. <i>Geophys. Res. Lett. 32(16)</i>: L16502 (1-4). <a href=\"http://dx.doi.org/10.1029/2005GL023427\" target=\"_blank\">dx.doi.org/10.1029/2005GL023427</a>","StandardTitle":"On the sensitivity of undeformed Arctic sea ice to its vertical salinity profile","AuthorsString":"Vancoppenolle, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":391349,"RR":"<b>Zhong, Y.; Liu, Y.G.; Yang, H.; Yin, Q.Z.; Wilson, D.J.; Lu, Z.Y.; Jaccard, S.L.; Struve, T.; Clift, P.D.; Kaboth-Bahr, S.; Larrasoana, J.C.; Bahr, A.; Gong, X.; Zhao, D.B.; Zhang, Y.A.; Xia, W.Y.; Liu, Q.S.</b> (2024). Orbital controls on North Pacific dust flux during the Late Quaternary. <i>Geophys. Res. Lett. 51(4)</i>: e2023GL106631. <a href=\"https://dx.doi.org/10.1029/2023GL106631\" target=\"_blank\">https://dx.doi.org/10.1029/2023GL106631</a>","StandardTitle":"Orbital controls on North Pacific dust flux during the Late Quaternary","AuthorsString":"Zhong, Y. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":352660,"RR":"<b>Paradis, S.; Goñi, M.; Masque, P.; Durán, R.; Arjona-Camas, M.; Palanques, A.; Puig, P.</b> (2021). Persistence of biogeochemical alterations of deep‐sea sediments by bottom trawling. <i>Geophys. Res. Lett. 48(2)</i>: e2020GL091279. <a href=\"https://dx.doi.org/10.1029/2020gl091279\" target=\"_blank\">https://dx.doi.org/10.1029/2020gl091279</a>","StandardTitle":"Persistence of biogeochemical alterations of deep‐sea sediments by bottom trawling","AuthorsString":"Paradis, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":396675,"RR":"<b>Li, M.; Organelli, E.; Serva, F.; Bellacicco, M.; Landolfi, A.; Pisano, A.; Marullo, S.; Shen, F.; Mignot, A.; van Gennip, S.; Santoleri, R.</b> (2024). Phytoplankton spring bloom inhibited by marine heatwaves in the north‐western Mediterranean Sea. <i>Geophys. Res. Lett. 51(20)</i>: e2024GL109141. <a href=\"https://dx.doi.org/10.1029/2024gl109141\" target=\"_blank\">https://dx.doi.org/10.1029/2024gl109141</a>","StandardTitle":"Phytoplankton spring bloom inhibited by marine heatwaves in the north‐western Mediterranean Sea","AuthorsString":"Li, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":56451,"RR":"<b>Martin, A.P.; Srokosz, M.A.</b> (2002). Plankton distribution spectra: inter-size class variability and the relative slopes for phytoplankton and zooplankton. <i>Geophys. Res. Lett. 29(24)</i>: 66 (1-4). <a href=\"http://dx.doi.org/10.1029/2002gl015117\" target=\"_blank\">dx.doi.org/10.1029/2002gl015117</a>","StandardTitle":"Plankton distribution spectra: inter-size class variability and the relative slopes for phytoplankton and zooplankton","AuthorsString":"Martin, A.P.; Srokosz, M.A.","BibLvlCode":"AS"},{"BRefID":295679,"RR":"<b>Lenaerts, J.T.M.; Van Tricht, K.; Lhermitte, S.; L'Ecuyer, T.S.</b> (2017). Polar clouds and radiation in satellite observations, reanalyses, and climate models. <i>Geophys. Res. Lett. 44(7)</i>: 3355-3364. <a href=\"https://dx.doi.org/10.1002/2016GL072242\" target=\"_blank\">https://dx.doi.org/10.1002/2016GL072242</a>","StandardTitle":"Polar clouds and radiation in satellite observations, reanalyses, and climate models","AuthorsString":"Lenaerts, J.T.M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":304201,"RR":"<b>Zimmerman, R.C.; Drake, L.A.; Burdige, D.J.</b> (2009). Potential export of unattached benthic macroalgae to the deep sea through wind-driven Langmuir circulation. <i>Geophys. Res. Lett. 36(4)</i>. <a href=\"https://dx.doi.org/10.1029/2008gl036188\" target=\"_blank\">https://dx.doi.org/10.1029/2008gl036188</a>","StandardTitle":"Potential export of unattached benthic macroalgae to the deep sea through wind-driven Langmuir circulation","AuthorsString":"Zimmerman, R.C. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":328247,"RR":"<b>Ho, D.T.; Schanze, J.</b> (2020). Precipitation‐induced reduction in surface ocean pCO<sub>2</sub>: Observations from the eastern tropical Pacific Ocean. <i>Geophys. Res. Lett. 47(15)</i>: e2020GL088252. <a href=\"https://dx.doi.org/10.1029/2020gl088252\" target=\"_blank\">https://dx.doi.org/10.1029/2020gl088252</a>","StandardTitle":"Precipitation‐induced reduction in surface ocean pCO<sub>2</sub>: Observations from the eastern tropical Pacific Ocean","AuthorsString":"Ho, D.T.; Schanze, J.","BibLvlCode":"AS"},{"BRefID":290479,"RR":"<b>van Haren, H.; Duineveld, G.; De Stigter , H.</b> (2017). Prefrontal bore mixing. <i>Geophys. Res. Lett. 44(18)</i>: 9408-9415. <a href=\"https://dx.doi.org/10.1002/2017GL074384\" target=\"_blank\">https://dx.doi.org/10.1002/2017GL074384</a>","StandardTitle":"Prefrontal bore mixing","AuthorsString":"van Haren, H. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":417721,"RR":"<b>Di Biase, V.; Munneke, P.K.; Veldhuijsen, S.B.M.; Husman, S.D.; van den Broeke, M.R.; Noël, B.; Buth, L.G.; Wouters, B.</b> (2024). Probability of Firn Aquifer Presence in Antarctica by Combining Remote Sensing and Regional Climate Model Data. <i>Geophys. Res. Lett. 51(15)</i>. <a href=\"https://dx.doi.org/10.1029/2024GL109367\" target=\"_blank\">https://dx.doi.org/10.1029/2024GL109367</a>","StandardTitle":"Probability of Firn Aquifer Presence in Antarctica by Combining Remote Sensing and Regional Climate Model Data","AuthorsString":"Di Biase, V. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":238462,"RR":"<b>Hezel, P.J.; Zhang, X.; Bitz, C.M.; Kelly, B.P.; Massonnet, F.</b> (2012). Projected decline in spring snow depth on Arctic sea ice caused by progressively later autumn open ocean freeze-up this century. <i>Geophys. Res. Lett. 39(17)</i>. <a href=\"http://dx.doi.org/10.1029/2012GL052794\" target=\"_blank\">dx.doi.org/10.1029/2012GL052794</a>","StandardTitle":"Projected decline in spring snow depth on Arctic sea ice caused by progressively later autumn open ocean freeze-up this century","AuthorsString":"Hezel, P.J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":334833,"RR":"<b>Hermans, T.H.J.; Gregory, J.M.; Palmer, M.D.; Ringer, M.A.; Katsman, C.A.; Slangen, A.B.A.</b> (2021). Projecting global mean sea‐level change using CMIP6 models. <i>Geophys. Res. Lett. 48(5)</i>: e2020GL092064. <a href=\"https://doi.org/10.1029/2020gl092064\" target=\"_blank\">https://doi.org/10.1029/2020gl092064</a>","StandardTitle":"Projecting global mean sea‐level change using CMIP6 models","AuthorsString":"Hermans, T.H.J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":358966,"RR":"<b>Smeaton, C.; Austin, W.E.N.</b> (2022). Quality not quantity: Prioritizing the management of sedimentary organic matter across continental shelf seas. <i>Geophys. Res. Lett. 49(5)</i>: e2021GL097481. <a href=\"https://dx.doi.org/10.1029/2021gl097481\" target=\"_blank\">https://dx.doi.org/10.1029/2021gl097481</a>","StandardTitle":"Quality not quantity: Prioritizing the management of sedimentary organic matter across continental shelf seas","AuthorsString":"Smeaton, C.; Austin, W.E.N.","BibLvlCode":"AS"},{"BRefID":356131,"RR":"<b>Sepic, J.; Vilibic, I.; Monserrat, S.</b> (2016). Quantifying the probability of meteotsunami occurrence from synoptic atmospheric patterns. <i>Geophys. Res. Lett. 43(19)</i>: 377-384. <a href=\"https://dx.doi.org/10.1002/2016gl070754\" target=\"_blank\">https://dx.doi.org/10.1002/2016gl070754</a>","StandardTitle":"Quantifying the probability of meteotsunami occurrence from synoptic atmospheric patterns","AuthorsString":"Sepic, J.; Vilibic, I.; Monserrat, S.","BibLvlCode":"AS"},{"BRefID":246809,"RR":"<b>McMillan, M; Shepherd, A; Gourmelen, N; Dehecq, A; Leeson, A; Ridout, A; Flament, T; Hogg, A; Gilbert, L; Benham, T; van den Broeke, M; Dowdeswell, A; Fettweis, X.; Noel, B; Strozzi, T</b> (2014). Rapid dynamic activation of a marine-based Arctic ice cap. <i>Geophys. Res. Lett. 41(24)</i>: 8902-8909. <a href=\"http://dx.doi.org/10.1002/2014GL062255\" target=\"_blank\">dx.doi.org/10.1002/2014GL062255</a>","StandardTitle":"Rapid dynamic activation of a marine-based Arctic ice cap","AuthorsString":"McMillan, M <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":328209,"RR":"<b>Le Bras, I.A.; Straneo, F.; Holte, J.; de Jong, M.F.; Holliday, N.P.</b> (2020). Rapid export of waters formed by convection near the Irminger Sea's western boundary. <i>Geophys. Res. Lett. 47(3)</i>: e2019GL085989. <a href=\"https://dx.doi.org/10.1029/2019gl085989\" target=\"_blank\">https://dx.doi.org/10.1029/2019gl085989</a>","StandardTitle":"Rapid export of waters formed by convection near the Irminger Sea's western boundary","AuthorsString":"Le Bras, I.A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":257345,"RR":"<b>van Angelen, J.; Lenaerts, J.; van den Broeke, M.; Fettweis, X.; van Meijgaard, E.</b> (2013). Rapid loss of firn pore space accelerates 21st century Greenland mass loss. <i>Geophys. Res. Lett. 40(10)</i>: 2109-2113. <a href=\"http://dx.doi.org/10.1002/grl.50490\" target=\"_blank\">dx.doi.org/10.1002/grl.50490</a>","StandardTitle":"Rapid loss of firn pore space accelerates 21st century Greenland mass loss","AuthorsString":"van Angelen, J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":353188,"RR":"<b>Navari, M.; Margulis, S.A.; Tedesco, M.; Fettweis, X.; van de Wal, R.S.W.</b> (2021). Reanalysis surface mass balance of the Greenland ice sheet along K-transect (2000-2014). <i>Geophys. Res. Lett. 48(17)</i>: e2021GL094602. <a href=\"https://dx.doi.org/10.1029/2021GL094602\" target=\"_blank\">https://dx.doi.org/10.1029/2021GL094602</a>","StandardTitle":"Reanalysis surface mass balance of the Greenland ice sheet along K-transect (2000-2014)","AuthorsString":"Navari, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":247466,"RR":"<b>de Steur, L.; Pickart, R.S.; Torres, D.J.; Valdimarsson, H.</b> (2015). Recent changes in the freshwater composition east of Greenland. <i>Geophys. Res. Lett. 42(7)</i>: 2326–2332. <a href=\"http://dx.doi.org/10.1002/2014GL062759\" target=\"_blank\">dx.doi.org/10.1002/2014GL062759</a>","StandardTitle":"Recent changes in the freshwater composition east of Greenland","AuthorsString":"de Steur, L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":123277,"RR":"<b>Jevrejeva, S.; Moore, J.C.; Grinsted, A.; Woodworth, P.L.</b> (2008). Recent global sea level acceleration started over 200 years ago? <i>Geophys. Res. Lett. 35(8)</i>: L08715. <a href=\"http://dx.doi.org/10.1029/2008GL033611\" target=\"_blank\">http://dx.doi.org/10.1029/2008GL033611</a>","StandardTitle":"Recent global sea level acceleration started over 200 years ago?","AuthorsString":"Jevrejeva, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":77834,"RR":"<b>Andersson, J.H.; Wijsman, J.W.M.; Herman, P.M.J.; Middelburg, J.J.; Soetaert, K.; Heip, C.H.R.</b> (2004). Respiration patterns in the deep ocean. <i>Geophys. Res. Lett. 31(3)</i>: L03304 (1-4). <a href=\"https://dx.doi.org/10.1029/2003GL018756\" target=\"_blank\">https://dx.doi.org/10.1029/2003GL018756</a>","StandardTitle":"Respiration patterns in the deep ocean","AuthorsString":"Andersson, J.H. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":302622,"RR":"<b>Hermans, T.H.J.; van der Wal, W.; Broerse, T.</b> (2018). Reversal of the direction of horizontal velocities induced by GIA as a function of mantle viscosity. <i>Geophys. Res. Lett. 45(18)</i>: 9597-9604. <a href=\"https://dx.doi.org/10.1029/2018gl078533\" target=\"_blank\">https://dx.doi.org/10.1029/2018gl078533</a>","StandardTitle":"Reversal of the direction of horizontal velocities induced by GIA as a function of mantle viscosity","AuthorsString":"Hermans, T.H.J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":352301,"RR":"<b>Dai, P.; Nie, J.</b> (2022). Robust expansion of extreme midlatitude storms under global warming. <i>Geophys. Res. Lett. 49(10)</i>: e2022GL099007. <a href=\"https://dx.doi.org/10.1029/2022gl099007\" target=\"_blank\">https://dx.doi.org/10.1029/2022gl099007</a>","StandardTitle":"Robust expansion of extreme midlatitude storms under global warming","AuthorsString":"Dai, P.; Nie, J.","BibLvlCode":"AS"},{"BRefID":355866,"RR":"<b>Bromirski, P.D.; Diez, A.; Gerstoft, P.; Stephen, R.A.; Bolmer, T.; Wiens, D.A.; Aster, R.C.; Nyblade, A.</b> (2015). Ross ice shelf vibrations. <i>Geophys. Res. Lett. 42(18)</i>: 7589-7597. <a href=\"https://dx.doi.org/10.1002/2015gl065284\" target=\"_blank\">https://dx.doi.org/10.1002/2015gl065284</a>","StandardTitle":"Ross ice shelf vibrations","AuthorsString":"Bromirski, P.D. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":26836,"RR":"<b>Cipollini, P.; Cromwell, D.; Challenor, P.G.; Raffaglio, S.</b> (2001). Rossby waves detected in global ocean colour data. <i>Geophys. Res. Lett. 28(2)</i>: 323-326","StandardTitle":"Rossby waves detected in global ocean colour data","AuthorsString":"Cipollini, P. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":129258,"RR":"<b>Rosenheim, B.E.; Swart, P.K.; Thorrold, S.R.; Eisenhauer, A.; Willenz, P.</b> (2005). Salinity change in the subtropical Atlantic: secular increase and teleconnections to the North Atlantic Oscillation. <i>Geophys. Res. Lett. 32(2)</i>: 1-4. <a href=\"http://dx.doi.org/10.1029/2004GL021499\" target=\"_blank\">dx.doi.org/10.1029/2004GL021499</a>","StandardTitle":"Salinity change in the subtropical Atlantic: secular increase and teleconnections to the North Atlantic Oscillation","AuthorsString":"Rosenheim, B.E. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":324664,"RR":"<b>Casas-Prat, M.; Wang, X.L.</b> (2020). Sea‐ice retreat contributes to projected increases in extreme Arctic Ocean surface waves. <i>Geophys. Res. Lett. 47(15)</i>: e2020GL088100. <a href=\"https://dx.doi.org/10.1029/2020gl088100\" target=\"_blank\">https://dx.doi.org/10.1029/2020gl088100</a>","StandardTitle":"Sea‐ice retreat contributes to projected increases in extreme Arctic Ocean surface waves","AuthorsString":"Casas-Prat, M.; Wang, X.L.","BibLvlCode":"AS"},{"BRefID":127391,"RR":"<b>Wakelin, S.L.; Woodworth, P.L.; Flather, R.A.; Williams, J.A.</b> (2003). Sea-level dependence on the NAO over the NW European Continental Shelf. <i>Geophys. Res. Lett. 30(7)</i>: 1403","StandardTitle":"Sea-level dependence on the NAO over the NW European Continental Shelf","AuthorsString":"Wakelin, S.L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":317939,"RR":"<b>Ladd, C.J.T.; Duggan-Edwards, M.F.; Bouma, T.J.; Pagès, J.F.; Skov, M.W.</b> (2019). Sediment supply explains long‐term and large‐scale patterns in salt marsh lateral expansion and erosion. <i>Geophys. Res. Lett. 46(20)</i>: 11178-11187. <a href=\"https://dx.doi.org/10.1029/2019gl083315\" target=\"_blank\">https://dx.doi.org/10.1029/2019gl083315</a>","StandardTitle":"Sediment supply explains long‐term and large‐scale patterns in salt marsh lateral expansion and erosion","AuthorsString":"Ladd, C.J.T. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":417604,"RR":"<b>Pseftogkas, A.; Stavrakou, T.; Müller, J.F.; Koukouli, M.E.; Balis, D.; Meleti, C.</b> (2024). Shifts in Maritime Trade Routes as a Result of Red Sea Shipping Crisis Detected in TROPOMI NO2 Data. <i>Geophys. Res. Lett. 51(20)</i>. <a href=\"https://dx.doi.org/10.1029/2024GL110491\" target=\"_blank\">https://dx.doi.org/10.1029/2024GL110491</a>","StandardTitle":"Shifts in Maritime Trade Routes as a Result of Red Sea Shipping Crisis Detected in TROPOMI NO2 Data","AuthorsString":"Pseftogkas, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":227983,"RR":"<b>Hassellöv, I.-M.; Turner, D.R.; Lauer, A.; Corbett, J.J.</b> (2013). Shipping contributes to ocean acidification. <i>Geophys. Res. Lett. 40(11)</i>: 2731-2736. <a href=\"https://dx.doi.org/10.1002/grl.50521\" target=\"_blank\">https://dx.doi.org/10.1002/grl.50521</a>","StandardTitle":"Shipping contributes to ocean acidification","AuthorsString":"Hassellöv, I.-M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":30438,"RR":"<b>Li, X.S.; Berger, A.; Loutre, M.F.; Maslin, M.A.; Haug, G.H.; Tiedemann, R.</b> (1998). Simulating late Pliocene northern hemisphere climate with the LLN 2-D model. <i>Geophys. Res. Lett. 25(6)</i>: 915-918","StandardTitle":"Simulating late Pliocene northern hemisphere climate with the LLN 2-D model","AuthorsString":"Li, X.S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":238450,"RR":"<b>Weaver, A.J.; Sedlacek, J.; Eby, M.; Alexander, K.; Crespin, E.; Fichefet, T.; Philippon-Berthier, G.; Joos, F.; Kawamiya, M.; Matsumoto, K.; Steinacher, M.; Tachiiri, K.; Tokos, K.; Yoshimori, M.; Zickfeld, K.</b> (2012). Stability of the Atlantic meridional overturning circulation: a model intercomparison. <i>Geophys. Res. Lett. 39(20)</i>: -. <a href=\"http://dx.doi.org/10.1029/2012GL053763\" target=\"_blank\">dx.doi.org/10.1029/2012GL053763</a>","StandardTitle":"Stability of the Atlantic meridional overturning circulation: a model intercomparison","AuthorsString":"Weaver, A.J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":123317,"RR":"<b>Maximenko, N.A.; Melnichenko, O.V.; Niiler, P.P.; Sasaki, H.</b> (2008). Stationary mesoscale jet-like features in the ocean. <i>Geophys. Res. Lett. 35</i>: L08603","StandardTitle":"Stationary mesoscale jet-like features in the ocean","AuthorsString":"Maximenko, N.A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":261735,"RR":"<b>de Jong, M.F.; de Steur, L.</b> (2016). Strong winter cooling over the Irminger Sea in winter 2014–2015, exceptional deep convection, and the emergence of anomalously low SST. <i>Geophys. Res. Lett. 43</i>: 7106–7113. <a href=\"http://dx.doi.org/10.1002/2016GL069596\" target=\"_blank\">dx.doi.org/10.1002/2016GL069596</a>","StandardTitle":"Strong winter cooling over the Irminger Sea in winter 2014–2015, exceptional deep convection, and the emergence of anomalously low SST","AuthorsString":"de Jong, M.F.; de Steur, L.","BibLvlCode":"AS"},{"BRefID":330587,"RR":"<b>Haumann, F.A.; Moorman, R.; Riser, S.C.; Smedsrud, L.H.; Maksym, T.; Wong, A.P.S.; Wilson, E.A.; Drucker, R.; Talley, L.D.; Johnson, K.S.; Key, R.M.; Sarmiento, J.L.</b> (2020). Supercooled Southern Ocean waters. <i>Geophys. Res. Lett. 47(20)</i>: e2020GL090242. <a href=\"https://dx.doi.org/10.1029/2020gl090242\" target=\"_blank\">https://dx.doi.org/10.1029/2020gl090242</a>","StandardTitle":"Supercooled Southern Ocean waters","AuthorsString":"Haumann, F.A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":352968,"RR":"<b>Van Liefferinge, B.; Taylor, D.; Tsutaki, S.; Fujita, S.; Gogineni, P.; Kawamura, K.; Matsuoka, K.; Moholdt, G.; Oyabu, I.; Abe-Ouchi, A.; Awasthi, A.; Buizert, C.; Gallet, J.-C.; Isaksson, E.; Motoyama, H.; Nakazawa, F.; Ohno, H.; O'Neill, C.; Pattyn, F.; Sugiura, K.</b> (2021). Surface mass balance controlled by local surface slope in inland Antarctica: implications for ice-sheet mass balance and oldest ice delineation in Dome Fuji. <i>Geophys. Res. Lett. 48(24)</i>: e2021GL094966. <a href=\"https://dx.doi.org/10.1029/2021GL094966\" target=\"_blank\">https://dx.doi.org/10.1029/2021GL094966</a>","StandardTitle":"Surface mass balance controlled by local surface slope in inland Antarctica: implications for ice-sheet mass balance and oldest ice delineation in Dome Fuji","AuthorsString":"Van Liefferinge, B. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":353635,"RR":"<b>Gilbert, E.; Kittel, C.</b> (2021). Surface melt and runoff on Antarctic ice shelves at 1.5°C, 2°C, and 4°C of future warming. <i>Geophys. Res. Lett. 48(8)</i>: e2020GL091733. <a href=\"https://dx.doi.org/10.1029/2020GL091733\" target=\"_blank\">https://dx.doi.org/10.1029/2020GL091733</a>","StandardTitle":"Surface melt and runoff on Antarctic ice shelves at 1.5°C, 2°C, and 4°C of future warming","AuthorsString":"Gilbert, E.; Kittel, C.","BibLvlCode":"AS"},{"BRefID":359051,"RR":"<b>de Winter, N.J.; Witbaard, R.; Kocken, I.J.; Müller, I.A.; Guo, J.; Goudsmit, B.; Ziegler, M.</b> (2022). Temperature dependence of clumped isotopes (∆<sub>47</sub>) in aragonite. <i>Geophys. Res. Lett. 49(20)</i>: e2022GL099479. <a href=\"https://dx.doi.org/10.1029/2022gl099479\" target=\"_blank\">https://dx.doi.org/10.1029/2022gl099479</a>","StandardTitle":"Temperature dependence of clumped isotopes (∆<sub>47</sub>) in aragonite","AuthorsString":"de Winter, N.J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":322857,"RR":"<b>Vannitsem, S.; Dalaiden, Q.; Goosse, H.</b> (2019). Testing for dynamical dependence: application to the surface mass balance over Antarctica. <i>Geophys. Res. Lett. 46(21)</i>: 12125-12135. <a href=\"https://dx.doi.org/10.1029/2019GL084329\" target=\"_blank\">https://dx.doi.org/10.1029/2019GL084329</a>","StandardTitle":"Testing for dynamical dependence: application to the surface mass balance over Antarctica","AuthorsString":"Vannitsem, S.; Dalaiden, Q.; Goosse, H.","BibLvlCode":"AS"},{"BRefID":382683,"RR":"<b>Wang, G.X.; Yuan, X.L.; Jing, C.Q.; Hamdi, R.; Ochege, F.U.; Dong, P.; Shao, Y.Q.; Qin, X.Y.</b> (2024). The decreased cloud cover dominated the rapid spring temperature rise in arid central Asia over the period 1980-2014. <i>Geophys. Res. Lett. 51(2)</i>: e2023GL107523. <a href=\"https://dx.doi.org/10.1029/2023GL107523\" target=\"_blank\">https://dx.doi.org/10.1029/2023GL107523</a>","StandardTitle":"The decreased cloud cover dominated the rapid spring temperature rise in arid central Asia over the period 1980-2014","AuthorsString":"Wang, G.X. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":393604,"RR":"<b>Bult, S.V.; Le Bars, D.; Haigh, I.D.; Gerkema, T.</b> (2024). The effect of the 18.6‐year lunar nodal cycle on steric sea Level changes. <i>Geophys. Res. Lett. 51(8)</i>. <a href=\"https://dx.doi.org/10.1029/2023gl106563\" target=\"_blank\">https://dx.doi.org/10.1029/2023gl106563</a>","StandardTitle":"The effect of the 18.6‐year lunar nodal cycle on steric sea Level changes","AuthorsString":"Bult, S.V. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":352191,"RR":"<b>Min, C.; Yang, Q.; Chen, D.; Yang, Y.; Zhou, X.; Shu, Q.; Liu, J.</b> (2022). The emerging Arctic shipping corridors. <i>Geophys. Res. Lett. 49(10)</i>: e2022GL099157. <a href=\"https://dx.doi.org/10.1029/2022gl099157\" target=\"_blank\">https://dx.doi.org/10.1029/2022gl099157</a>","StandardTitle":"The emerging Arctic shipping corridors","AuthorsString":"Min, C. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":359683,"RR":"<b>Colina Alonso, A.; van Maren, D.S.; Herman, P.M.J.; van Weerdenburg, R.J.A.; Huismans, Y.; Holthuijsen, S.J.; Govers, L.L.; Bijleveld, A.I.; Wang, Z.</b> (2022). The existence and origin of multiple equilibria in sand‐mud sediment beds. <i>Geophys. Res. Lett. 49(22)</i>: e2022GL101141. <a href=\"https://dx.doi.org/10.1029/2022gl101141\" target=\"_blank\">https://dx.doi.org/10.1029/2022gl101141</a>","StandardTitle":"The existence and origin of multiple equilibria in sand‐mud sediment beds","AuthorsString":"Colina Alonso, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":220527,"RR":"<b>Pierce, D.W.; Glecker, P.J.; Barnett, T.P.; Santer, B.D.; Durack, P.J.</b> (2012). The fingerprint of human-induced changes in the ocean's salinity and temperature fields. <i>Geophys. Res. Lett. 39(L21704)</i>: 6 pp. <a href=\"http://dx.doi.org/10.1029/2012GL053389\" target=\"_blank\">http://dx.doi.org/10.1029/2012GL053389</a>","StandardTitle":"The fingerprint of human-induced changes in the ocean's salinity and temperature fields","AuthorsString":"Pierce, D.W. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":239866,"RR":"<b>Hawkes, J.A.; Connelly, D.P.; Rijkenberg, M.J.A.; Achterberg, E.P.</b> (2014). The importance of shallow hydrothermal island arc systems in ocean biogeochemistry. <i>Geophys. Res. Lett. 41(3)</i>: 942-947. <a href=\"http://dx.doi.org/10.1002/2013GL058817\" target=\"_blank\">dx.doi.org/10.1002/2013GL058817</a>","StandardTitle":"The importance of shallow hydrothermal island arc systems in ocean biogeochemistry","AuthorsString":"Hawkes, J.A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":248361,"RR":"<b>Arndt, J.E.; Schenke, H.W.; Jakobsson, M.; Nitsche, F.O.; Buys, G.; Goleby, B.; Rebesco, M.; Bohoyo, F.; Hong, J.; Black, J.; Greku, R.; Udintsev, G.; Barrios, F.; Reynoso-Peralta, W.; Taisei, M.; Wigley, R.</b> (2013). The International Bathymetric Chart of the Southern Ocean (IBCSO) Version 1.0—A new bathymetric compilation covering circum-Antarctic waters. <i>Geophys. Res. Lett. 40(12)</i>: 3111–3117. <a href=\"http://dx.doi.org/10.1002/grl.50413\" target=\"_blank\">http://dx.doi.org/10.1002/grl.50413</a>","StandardTitle":"The International Bathymetric Chart of the Southern Ocean (IBCSO) Version 1.0—A new bathymetric compilation covering circum-Antarctic waters","AuthorsString":"Arndt, J.E. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":393606,"RR":"<b>Sanchez-Franks, A.; Holliday, N.P.; Evans, D.G.; Fried, N.; Tooth, O.J.; Chafik, L.; Fu, Y.; Li, F.; de Jong, M.F.; Johnson, H.L.</b> (2024). The Irminger Gyre as a key driver of the subpolar North Atlantic overturning. <i>Geophys. Res. Lett. 51(8)</i>: e2024GL108457. <a href=\"https://dx.doi.org/10.1029/2024gl108457\" target=\"_blank\">https://dx.doi.org/10.1029/2024gl108457</a>","StandardTitle":"The Irminger Gyre as a key driver of the subpolar North Atlantic overturning","AuthorsString":"Sanchez-Franks, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":256833,"RR":"<b>Vannitsem, S.</b> (2015). The role of the ocean mixed layer on the development of the North Atlantic Oscillation: a dynamical system's perspective. <i>Geophys. Res. Lett. 42(20)</i>: 8615-8623. <a href=\"https://dx.doi.org/10.1002/2015GL065974\" target=\"_blank\">https://dx.doi.org/10.1002/2015GL065974</a>","StandardTitle":"The role of the ocean mixed layer on the development of the North Atlantic Oscillation: a dynamical system's perspective","AuthorsString":"Vannitsem, S.","BibLvlCode":"AS"},{"BRefID":323009,"RR":"<b>Sun, S.; Hattermann, T.; Pattyn, F.; Nicholls, K.W.; Drews, R.; Berger, S.</b> (2019). Topographic shelf waves control seasonal melting near Antarctic ice shelf grounding lines. <i>Geophys. Res. Lett. 46(16)</i>: 9824-9832. <a href=\"https://dx.doi.org/10.1029/2019GL083881\" target=\"_blank\">https://dx.doi.org/10.1029/2019GL083881</a>","StandardTitle":"Topographic shelf waves control seasonal melting near Antarctic ice shelf grounding lines","AuthorsString":"Sun, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":356128,"RR":"<b>Renault, L.; Vizoso, G.; Jansá, A.; Wilkin, J.; Tintoré, J.</b> (2011). Toward the predictability of meteotsunamis in the Balearic Sea using regional nested atmosphere and ocean models. <i>Geophys. Res. Lett. 38(10)</i>: 1-7. <a href=\"https://dx.doi.org/10.1029/2011gl047361\" target=\"_blank\">https://dx.doi.org/10.1029/2011gl047361</a>","StandardTitle":"Toward the predictability of meteotsunamis in the Balearic Sea using regional nested atmosphere and ocean models","AuthorsString":"Renault, L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":206831,"RR":"<b>Katsman, C.A.; van Oldenborgh, G.J.</b> (2011). Tracing the upper ocean's \"missing heat\". <i>Geophys. Res. Lett. 38(L14610)</i>: 5 pp. + add. mat. <a href=\"http://dx.doi.org/10.1029/2011GL048417\" target=\"_blank\">http://dx.doi.org/10.1029/2011GL048417</a>","StandardTitle":"Tracing the upper ocean's \"missing heat\"","AuthorsString":"Katsman, C.A.; van Oldenborgh, G.J.","BibLvlCode":"AS"},{"BRefID":322117,"RR":"<b>van der Does, M.; Brummer, G.-J. A.; Crimpen; Korte, L.F.; Mahowald, N.M.; Merkel, U.; Yu; Zuidema; Stuut, J.-B.W.</b> (2020). Tropical rains controlling deposition of Saharan dust across the North Atlantic Ocean. <i>Geophys. Res. Lett. 47(5)</i>: e2019GL086867. <a href=\"https://dx.doi.org/10.1029/2019gl086867\" target=\"_blank\">https://dx.doi.org/10.1029/2019gl086867</a>","StandardTitle":"Tropical rains controlling deposition of Saharan dust across the North Atlantic Ocean","AuthorsString":"van der Does, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":214505,"RR":"<b>Hester, K.C.; Peltzer, E.T.; Kirkwood, W.J.; Brewer, P.G.</b> (2008). Unanticipated consequences of ocean acidification: A noisier ocean at lower pH. <i>Geophys. Res. Lett. 35(L19601)</i>: 5 pp. <a href=\"http://dx.doi.org/10.1029/2008GL034913\" target=\"_blank\">http://dx.doi.org/10.1029/2008GL034913</a>","StandardTitle":"Unanticipated consequences of ocean acidification: A noisier ocean at lower pH","AuthorsString":"Hester, K.C. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":354012,"RR":"<b>Verjans, V.; Leeson, A.A.; McMillan, M.; Stevens, C.M.; van Wessem, J.M.; van de Berg, W.J.; van den Broeke, M.R.; Kittel, C.; Amory, C.; Fettweis, X.; Hansen, N.; Boberg, F.; Mottram, R.</b> (2021). Uncertainty in East Antarctic firn thickness constrained using a model ensemble approach. <i>Geophys. Res. Lett. 48(7)</i>: e2020GL092060. <a href=\"https://dx.doi.org/10.1029/2020GL092060\" target=\"_blank\">https://dx.doi.org/10.1029/2020GL092060</a>","StandardTitle":"Uncertainty in East Antarctic firn thickness constrained using a model ensemble approach","AuthorsString":"Verjans, V. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":323013,"RR":"<b>Veloso‐Alarcón, M.E.; Janson, P.; De Batist, M.; Minshull, T.A.; Westbrook, G.K.; Pälike, H.; Bünz, S.; Wright, I.; Greinert, J.</b> (2019). Variability of acoustically evidenced methane bubble emissions offshore western Svalbard. <i>Geophys. Res. Lett. 46(15)</i>: 9072-9081. <a href=\"https://dx.doi.org/10.1029/2019GL082750\" target=\"_blank\">https://dx.doi.org/10.1029/2019GL082750</a>","StandardTitle":"Variability of acoustically evidenced methane bubble emissions offshore western Svalbard","AuthorsString":"Veloso‐Alarcón, M.E. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":303002,"RR":"<b>Damveld, J.H.; van der Reijden, K.J.; Cheng, C.; Koop, L.; Haaksma, L.R.; Walsh, C.A.J.; Soetaert, K.; Borsje, B.W.; Govers, L.L; Roos, P.C.; Olff, H.; Hulscher, S.J.M.H.</b> (2018). Video transects reveal that tidal sand waves affect the spatial distribution of benthic organisms and sand ripples. <i>Geophys. Res. Lett. 45(21)</i>: 11,837-11,846. <a href=\"https://dx.doi.org/10.1029/2018gl079858\" target=\"_blank\">https://dx.doi.org/10.1029/2018gl079858</a>","StandardTitle":"Video transects reveal that tidal sand waves affect the spatial distribution of benthic organisms and sand ripples","AuthorsString":"Damveld, J.H. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":335912,"RR":"<b>Hamme, R.C.; Webley, P.W.; Crawford, W.R.; Whitney, F.A.; DeGrandpre, M.D.; Emerson, S.R.; Eriksen, C.C.; Giesbrecht, K.E.; Gower, J.F.R.; Kavanaugh, M.T.; Peña, M.A.; Sabine, C.L.; Batten, S.D.; Coogan, L.A.; Grundle, D.S.; Lockwood, D.</b> (2010). Volcanic ash fuels anomalous plankton bloom in subarctic northeast Pacific. <i>Geophys. Res. Lett. 37(19)</i>: L19604. <a href=\"https://dx.doi.org/10.1029/2010gl044629\" target=\"_blank\">https://dx.doi.org/10.1029/2010gl044629</a>","StandardTitle":"Volcanic ash fuels anomalous plankton bloom in subarctic northeast Pacific","AuthorsString":"Hamme, R.C. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":352102,"RR":"<b>Desbruyères, D.G.; Bravo, E.P.; Thierry, V.; Mercier, H.; Lherminier, P.; Cabanes, C.; Biló, T.C.; Fried, N.; de Jong, M.F.</b> (2022). Warming‐to‐cooling reversal of overflow‐derived water masses in the Irminger Sea during 2002‐2021. <i>Geophys. Res. Lett. 49(10)</i>: e2022GL098057. <a href=\"https://dx.doi.org/10.1029/2022gl098057\" target=\"_blank\">https://dx.doi.org/10.1029/2022gl098057</a>","StandardTitle":"Warming‐to‐cooling reversal of overflow‐derived water masses in the Irminger Sea during 2002‐2021","AuthorsString":"Desbruyères, D.G. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":218228,"RR":"<b>Hughes, C.W.; Tamisiea, M.E.; Bingham, R.J.; Williams, J.</b> (2012). Weighing the ocean: Using a single mooring to measure changes in the mass of the ocean. <i>Geophys. Res. Lett. 39(L17602)</i>: 6 pp. <a href=\"http://dx.doi.org/10.1029/2012GL052935\" target=\"_blank\">http://dx.doi.org/10.1029/2012GL052935</a>","StandardTitle":"Weighing the ocean: Using a single mooring to measure changes in the mass of the ocean","AuthorsString":"Hughes, C.W. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":361727,"RR":"<b>Dalaiden, Q.; Schurer, A.P.; Kirchmeier-Young, M.C.; Goosse, H.; Hegerl, G.C.</b> (2022). West Antarctic surface climate changes since the mid-20th century driven by anthropogenic forcing. <i>Geophys. Res. Lett. 49(16)</i>: e2022GL099543. <a href=\"https://dx.doi.org/10.1029/2022GL099543\" target=\"_blank\">https://dx.doi.org/10.1029/2022GL099543</a>","StandardTitle":"West Antarctic surface climate changes since the mid-20th century driven by anthropogenic forcing","AuthorsString":"Dalaiden, Q. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":336952,"RR":"<b>Wang, C.; Wu, K.; Wu, L.; Zhao, H.; Cao, J.</b> (2021). What caused the unprecedented absence of western North Pacific tropical cyclones in July 2020? <i>Geophys. Res. Lett. 48(9)</i>: e2020GL092282. <a href=\"https://hdl.handle.net/10.1029/2020gl092282\" target=\"_blank\">https://hdl.handle.net/10.1029/2020gl092282</a>","StandardTitle":"What caused the unprecedented absence of western North Pacific tropical cyclones in July 2020?","AuthorsString":"Wang, C. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":247469,"RR":"<b>van Haren, H.; Climatoribus, A.; Gostiaux, L.</b> (2015). Where large deep-ocean waves break. <i>Geophys. Res. Lett. 42(7)</i>: 2351–2357. <a href=\"http://dx.doi.org/10.1002/2015GL063329\" target=\"_blank\">dx.doi.org/10.1002/2015GL063329</a>","StandardTitle":"Where large deep-ocean waves break","AuthorsString":"van Haren, H. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":391354,"RR":"<b>Tollenaar, V.; Zekollari, H.; Pattyn, F.; Russwurm, M.; Kellenberger, B.; Lhermitte, S.; Izeboud, M.; Tuia, D.</b> (2024). Where the white continent Is blue: deep learning locates bare ice in Antarctica. <i>Geophys. Res. Lett. 51(3)</i>: e2023GL106285. <a href=\"https://dx.doi.org/10.1029/2023GL106285\" target=\"_blank\">https://dx.doi.org/10.1029/2023GL106285</a>","StandardTitle":"Where the white continent Is blue: deep learning locates bare ice in Antarctica","AuthorsString":"Tollenaar, V. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":238208,"RR":"<b>Pattyn, F.; Durand, G.</b> (2013). Why marine ice sheet model predictions may diverge in estimating future sea level rise. <i>Geophys. Res. Lett. 40(16)</i>: 4316-4320. <a href=\"https://dx.doi.org/10.1002/grl.50824\" target=\"_blank\">https://dx.doi.org/10.1002/grl.50824</a>","StandardTitle":"Why marine ice sheet model predictions may diverge in estimating future sea level rise","AuthorsString":"Pattyn, F.; Durand, G.","BibLvlCode":"AS"},{"BRefID":356037,"RR":"<b>Carvajal, M.; Sepúlveda, I.; Gubler, A.; Garreaud, R.</b> (2022). Worldwide signature of the 2022 Tonga volcanic tsunami. <i>Geophys. Res. Lett. 49(6)</i>: e2022GL098153. <a href=\"https://dx.doi.org/10.1029/2022gl098153\" target=\"_blank\">https://dx.doi.org/10.1029/2022gl098153</a>","StandardTitle":"Worldwide signature of the 2022 Tonga volcanic tsunami","AuthorsString":"Carvajal, M. <i>et al.</i>","BibLvlCode":"AS"}],"BEntOpen":43509,"BEntPrivate":null,"availability":null,"litstyles":null,"thespers":null,"arch2discl":805,"SERpubls":null,"MONpubls":null,"pictures":[],"thestermsPath":null,"thestermsASFA":null,"taxtermsASFA":null,"geotermsASFA":null,"collections":[{"Collection":"Waterbouwkundig Laboratorium","ShortName":"WL"}],"conf":null,"proj":null,"Physdatasets":null,"spcols":{"805":{"SpName":"Koninklijk Nederlands Instituut voor Onderzoek der Zee","SpColID":805,"ParSpColID":null,"TopParID":null,"ShortName":"NIOZ","URLLocation":"https://www.vliz.be/imis/nioz/imis.php?refid=","LibID":2779,"OpenRepoFlag":1,"SpTypID":1,"TopParIDNotWebsite":null,"SpColPath":"NIOZ"},"130":{"SpName":"Waterbouwkundig Laboratorium","SpColID":130,"ParSpColID":null,"TopParID":null,"ShortName":"WL","URLLocation":null,"LibID":2706,"OpenRepoFlag":null,"SpTypID":1,"TopParIDNotWebsite":null,"SpColPath":"WL"}},"doi":null,"publs":[{"PublID":62,"PublName":"American Geophysical Union","InsID":null,"PersID":null,"INBOID":7516,"OrderNr":1}],"serparttypes":["A"],"monauthors":null,"MParts":null,"SParts":null,"hLibs":null,"langs":[{"BEntID":43509,"AbstractFlag":0,"LangID":15,"LangCode":"en","Lang":"English","DutchTerm":"Engels","LangCodeExtended":"eng"}],"urls":[{"URL":"www.agu.org/journals/gl/","externalID":null,"URLTypeCode":null,"URLID":11368,"URLTypID":22,"URLType":"Journal home page","URLPrefix":null}],"thesterms":null,"taxterms":null,"geoterms":null,"othterms":null,"asfacodes":null,"asfa2codes":null,"thestermsFRIS":null,"taxtermsFRIS":null,"geotermsFRIS":null,"othtermsFRIS":null,"resmessage":"","complete":1,"sessions":{"newSesName":null,"newSesDate":{"date":"2001-03-21 18:02:36.793000","timezone_type":3,"timezone":"Europe/Brussels"},"updSesName":"Haspeslagh, Jan, J.","updSesDate":{"date":"2013-08-26 12:00:56.637000","timezone_type":3,"timezone":"Europe/Brussels"}}}
