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Ocean warming threatens the viability of 60% of Antarctic ice shelves. <i>Nature (Lond.) 647(8088)</i>: 102-108. <a href=\"https://dx.doi.org/10.1038/s41586-025-09657-w\" target=\"_blank\">https://dx.doi.org/10.1038/s41586-025-09657-w</a>","AutID":608422,"MonDate":null,"AnaDate":2025,"PeerRev":1,"outputType":"1_A1","OpenAcc":0},{"BRefID":435776,"RR":"<b>Pirlet, N.; Fichefet, T.; Vancoppenolle, M.; Fraser, A.D.; Mathiot, P.; Rousset, C.; Barthélemy, A.; Barriat, P.-Y.; Pelletier, C.; Madec, G.; Kittel, C.</b> (2025). Benefits of a landfast ice representation on simulated Antarctic sea ice and coastal polynya dynamics. <i>JGR: Oceans 130(9)</i>: e2024JC022032. <a href=\"https://dx.doi.org/10.1029/2024jc022032\" target=\"_blank\">https://dx.doi.org/10.1029/2024jc022032</a>","AutID":488170,"MonDate":null,"AnaDate":2025,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":391449,"RR":"<b>Maure, D.; Kittel, C.; Lambin, C.; Delhasse, A.; Fettweis, X.</b> (2023). Spatially heterogeneous effect of climate warming on the Arctic land ice. <i>Cryosphere 17(11)</i>: 4645-4659. <a href=\"https://dx.doi.org/10.5194/tc-17-4645-2023\" target=\"_blank\">https://dx.doi.org/10.5194/tc-17-4645-2023</a>","AutID":562876,"MonDate":null,"AnaDate":2023,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":361566,"RR":"<b>Carter, J.; Leeson, A.; Orr, A.; Kittel, C.; van Wessem, J.M.</b> (2022). Variability in Antarctic surface climatology across regional climate models and reanalysis datasets. <i>Cryosphere 16(9)</i>: 3815-3841. <a href=\"https://dx.doi.org/10.5194/tc-16-3815-2022\" target=\"_blank\">https://dx.doi.org/10.5194/tc-16-3815-2022</a>","AutID":489589,"MonDate":null,"AnaDate":2022,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":352731,"RR":"<b>Hansen, N.; Simonsen, S.B.; Boberg, F.; Kittel, C.; Orr, A.; Souverijns, N.; Van Wessem, J.M.; Mottram, R.</b> (2022). Brief communication: Impact of common ice mask in surface mass balance estimates over the Antarctic ice sheet. <i>Cryosphere 16(2)</i>: 711-718. <a href=\"https://dx.doi.org/10.5194/tc-16-711-2022\" target=\"_blank\">https://dx.doi.org/10.5194/tc-16-711-2022</a>","AutID":489589,"MonDate":null,"AnaDate":2022,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":352789,"RR":"<b>Huot, P.-V.; Kittel, C.; Fichefet, T.; Jourdain, N.C.; Fettweis, X.</b> (2022). Effects of ocean mesoscale eddies on atmosphere-sea ice-ocean interactions off Adelie Land, East Antarctica. <i>Clim. Dyn. 59</i>: 41-60. <a href=\"https://dx.doi.org/10.1007/s00382-021-06115-x\" target=\"_blank\">https://dx.doi.org/10.1007/s00382-021-06115-x</a>","AutID":373532,"MonDate":null,"AnaDate":2022,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":355913,"RR":"<b>Kittel, C.; Amory, C.; Hofer, S.; Agosta, C.; Jourdain, N.C.; Gilbert, E.; Le Toumelin, L.; Vignon, E.; Gallee, H.; Fettweis, X.</b> (2022). Clouds drive differences in future surface melt over the Antarctic ice shelves. <i>Cryosphere 16(7)</i>: 2655-2669. <a href=\"https://dx.doi.org/10.5194/tc-16-2655-2022\" target=\"_blank\">https://dx.doi.org/10.5194/tc-16-2655-2022</a>","AutID":504962,"MonDate":null,"AnaDate":2022,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":352785,"RR":"<b>Pelletier, C.; Fichefet, T.; Goosse, H.; Haubner, K.; Helsen, S.; Huot, P.-V.; Kittel, C.; Klein, F.; Le Clec'h, S.; van Lipzig, N.P.M.; Marchi, S.; Massonnet, F.; Mathiot, P.; Moravveji, E.; Moreno-Chamarro, E.; Ortega, P.; Pattyn, F.; Souverijns, N.; Van Achter, G.; Vanden Broucke, S.; Vanhulle, A.; Verfaillie, D.; Zipf, L.</b> (2022). PARASO, a circum-Antarctic fully coupled ice-sheet-ocean-sea-ice-atmosphere-land model involving f.ETISh1.7, NEMO3.6, LIM3.6, COSM05.0 and CLM4.5. <i>Geosci. Model Dev. 15(2)</i>: 553-594. <a href=\"https://dx.doi.org/10.5194/gmd-15-553-2022\" target=\"_blank\">https://dx.doi.org/10.5194/gmd-15-553-2022</a>","AutID":489589,"MonDate":null,"AnaDate":2022,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":352514,"RR":"<b>Wille, J.D.; Favier, V.; Jourdain, N.C.; Kittel, C.; Turton, J.V.; Agosta, C.; Gorodetskaya, I.V.; Picard, G.; Codron, F.; Leroy-Dos Santos, C.; Amory, C.; Fettweis, X.; Blanchet, J.; Jomelli, V.; Berchet, A.</b> (2022). Intense atmospheric rivers can weaken ice shelf stability at the Antarctic Peninsula. <i>Commun. Earth Environ. 3</i>: 90. <a href=\"https://dx.doi.org/10.1038/s43247-022-00422-9\" target=\"_blank\">https://dx.doi.org/10.1038/s43247-022-00422-9</a>","AutID":488170,"MonDate":null,"AnaDate":2022,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":353198,"RR":"<b>Crockart, C.K.; Vance, T.R.; Fraser, A.D.; Abram, N.J.; Criscitiello, A.S.; Curran, M.A.J.; Favier, V.; Gallant, A.J.E.; Kittel, C.; Kjaer, H.A.; Klekociuk, A.R.; Jong, L.M.; Moy, A.D.; Plummer, C.T.; Vallelonga, P.T.; Wille, J.; Zhang, L.</b> (2021). El Niño–Southern Oscillation signal in a new East Antarctic ice core, Mount Brown South. <i>Clim. Past 17(5)</i>: 1795-1818. <a href=\"https://dx.doi.org/10.5194/cp-17-1795-2021\" target=\"_blank\">https://dx.doi.org/10.5194/cp-17-1795-2021</a>","AutID":489589,"MonDate":null,"AnaDate":2021,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":337334,"RR":"<b>Donat-Magnin, M.; Jourdain, N.C.; Kittel, C.; Agosta, C.; Amory, C.; Gallee, H.; Krinner, G.; Chekki, M.</b> (2021). Future surface mass balance and surface melt in the Amundsen sector of the West Antarctic Ice Sheet. <i>Cryosphere 15(2)</i>: 571-593. <a href=\"https://hdl.handle.net/10.5194/tc-15-571-2021\" target=\"_blank\">https://hdl.handle.net/10.5194/tc-15-571-2021</a>","AutID":446094,"MonDate":null,"AnaDate":2021,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"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>","AutID":495776,"MonDate":null,"AnaDate":2021,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":354018,"RR":"<b>Huot, P.-V.; Fichefet, T.; Jourdain, N.C.; Mathiot, P.; Rousset, C.; Kittel, C.; Fettweis, X.</b> (2021). Influence of ocean tides and ice shelves on ocean-ice interactions and dense shelf water formation in the D'Urville Sea, Antarctica. <i>Ocean Modelling 162</i>: 101794. <a href=\"https://dx.doi.org/10.1016/j.ocemod.2021.101794\" target=\"_blank\">https://dx.doi.org/10.1016/j.ocemod.2021.101794</a>","AutID":373532,"MonDate":null,"AnaDate":2021,"PeerRev":1,"outputType":"1_A1","OpenAcc":0},{"BRefID":353031,"RR":"<b>Huot, P.-V.; Kittel, C.; Fichefet, T.; Jourdain, N.C.; Sterlin, J.; Fettweis, X.</b> (2021). Effects of the atmospheric forcing resolution on simulated sea ice and polynyas off Adelie Land, East Antarctica. <i>Ocean Modelling 168</i>: 101901. <a href=\"https://dx.doi.org/10.1016/j.ocemod.2021.101901\" target=\"_blank\">https://dx.doi.org/10.1016/j.ocemod.2021.101901</a>","AutID":373532,"MonDate":null,"AnaDate":2021,"PeerRev":1,"outputType":"1_A1","OpenAcc":0},{"BRefID":337282,"RR":"<b>Kittel, C.; Amory, C.; Agosta, C.; Jourdain, N.C.; Hofer, S.; Delhasse, A.; Doutreloup, S.; Huot, P.-V.; Lang, C.; Fichefet, T.; Fettweis, X.</b> (2021). Diverging future surface mass balance between the Antarctic ice shelves and grounded ice sheet. <i>Cryosphere 15(3)</i>: 1215-1236. <a href=\"https://hdl.handle.net/10.5194/tc-15-1215-2021\" target=\"_blank\">https://hdl.handle.net/10.5194/tc-15-1215-2021</a>","AutID":445605,"MonDate":null,"AnaDate":2021,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":353323,"RR":"<b>Le Toumelin, L.; Amory, C.; Favier, V.; Kittel, C.; Hofer, S.; Fettweis, X.; Gallee, H.; Kayetha, V.</b> (2021). Sensitivity of the surface energy budget to drifting snow as simulated by MAR in coastal Adelie Land, Antarctica. <i>Cryosphere 15(8)</i>: 3595-3614. <a href=\"https://dx.doi.org/10.5194/tc-15-3595-2021\" target=\"_blank\">https://dx.doi.org/10.5194/tc-15-3595-2021</a>","AutID":373532,"MonDate":null,"AnaDate":2021,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":353296,"RR":"<b>Mottram, R.; Hansen, N.; Kittel, C.; Van Wessem, J.M.; Agosta, C.; Amory, C.; Boberg, F.; van de Berg, W.J.; Fettweis, X.; Gossart, A.; van Lipzig, N.P.M.; van Meijgaard, E.; Orr, A.; Phillips, T.; Webster, S.; Simonsen, S.B.; Souverijns, N.</b> (2021). What is the surface mass balance of Antarctica? An intercomparison of regional climate model estimates. <i>Cryosphere 15(8)</i>: 3751-3784. <a href=\"https://dx.doi.org/10.5194/tc-15-3751-2021\" target=\"_blank\">https://dx.doi.org/10.5194/tc-15-3751-2021</a>","AutID":489589,"MonDate":null,"AnaDate":2021,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":352969,"RR":"<b>Pohl, B.; Favier, V.; Wille, J.; Udy, D.G.; Vance, T.R.; Pergaud, J.; Dutrievoz, N.; Blanchet, J.; Kittel, C.; Amory, C.; Krinner, G.; Codron, F.</b> (2021). Relationship between weather regimes and atmospheric rivers in East Antarctica. <i>JGR: Atmospheres 126(24)</i>: e2021JD035294. <a href=\"https://dx.doi.org/10.1029/2021JD035294\" target=\"_blank\">https://dx.doi.org/10.1029/2021JD035294</a>","AutID":373532,"MonDate":null,"AnaDate":2021,"PeerRev":1,"outputType":"1_A1","OpenAcc":0},{"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>","AutID":496938,"MonDate":null,"AnaDate":2021,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":353647,"RR":"<b>Wille, J.D.; Favier, V.; Gorodetskaya, I.V.; Agosta, C.; Kittel, C.; Beeman, J.C.; Jourdain, N.C.; Lenaerts, J.T.M.; Codron, F.</b> (2021). Antarctic atmospheric river climatology and precipitation impacts. <i>JGR: Atmospheres 126(8)</i>: e2020JD033788. <a href=\"https://dx.doi.org/10.1029/2020JD033788\" target=\"_blank\">https://dx.doi.org/10.1029/2020JD033788</a>","AutID":373532,"MonDate":null,"AnaDate":2021,"PeerRev":1,"outputType":"1_A1","OpenAcc":0},{"BRefID":322761,"RR":"<b>Donat-Magnin, M.; Jourdain, N.C.; Gallee, H.; Amory, C.; Kittel, C.; Fettweis, X.; Wille, J.D.; Favier, V.; Drira, A.; Agosta, C.</b> (2020). Interannual variability of summer surface mass balance and surface melting in the Amundsen sector, West Antarctica. <i>Cryosphere 14(1)</i>: 229-249. <a href=\"https://dx.doi.org/10.5194/tc-14-229-2020\" target=\"_blank\">https://dx.doi.org/10.5194/tc-14-229-2020</a>","AutID":373532,"MonDate":null,"AnaDate":2020,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":355834,"RR":"<b>Fettweis, X.; Hofer, S.; Krebs-Kanzow, U.; Amory, C.; Aoki, T.; Berends, C.J.; Born, A.; Box, J.E.; Delhasse, A.; Fujita, K.; Gierz, P.; Goelzer, H.; Hanna, E.; Hashimoto, A.; Huybrechts, P.; Kapsch, M.-L.; King, M.D.; Kittel, C.; Lang, C.; Langen, P.L.; Lenaerts, J.T.M.; Liston, G.E.; Lohmann, G.; Mernild, S.H.; Mikolajewicz, U.; Modali, K.; Mottram, R.H.; Niwano, M.; Noël, B.; Ryan, J.C.; Smith, A.; Streffing, J.; Tedesco, M.; van de Berg, W.J.; van den Broeke, M.; van de Wal, R.S.W.; van Kampenhout, L.; Wilton, D.; Wouters, B.; Ziemen, F.; Zolles, T.</b> (2020). GrSMBMIP: intercomparison of the modelled 1980–2012 surface mass balance over the Greenland Ice Sheet. <i>Cryosphere 14(11)</i>: 3935-3958. <a href=\"https://dx.doi.org/10.5194/tc-14-3935-2020\" target=\"_blank\">https://dx.doi.org/10.5194/tc-14-3935-2020</a>","AutID":446094,"MonDate":null,"AnaDate":2020,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":337474,"RR":"<b>Hofer, S.; Lang, C.; Amory, C.; Kittel, C.; Delhasse, A.; Tedstone, A.; Fettweis, X.</b> (2020). Greater Greenland Ice Sheet contribution to global sea level rise in CMIP6. <i>Nature Comm. 11(1)</i>: 6289. <a href=\"https://hdl.handle.net/10.1038/s41467-020-20011-8\" target=\"_blank\">https://hdl.handle.net/10.1038/s41467-020-20011-8</a>","AutID":446094,"MonDate":null,"AnaDate":2020,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":311425,"RR":"<b>Agosta, C.; Amory, C.; Kittel, C.; Orsi, A.; Favier, V.; Gallee, H.; van den Broeke, M.R.; Lenaerts, J.T.M.; van Wessem, J.M.; van de Berg, W.J.; Fettweis, X.</b> (2019). Estimation of the Antarctic surface mass balance using the regional climate model MAR (1979-2015) and identification of dominant processes. <i>Cryosphere 13(1)</i>: 281-296. <a href=\"https://dx.doi.org/10.5194/tc-13-281-2019\" target=\"_blank\">https://dx.doi.org/10.5194/tc-13-281-2019</a>","AutID":373532,"MonDate":null,"AnaDate":2019,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":322806,"RR":"<b>Amory, C.; Kittel, C.</b> (2019). Brief communication: rare ambient saturation during drifting snow occurrences at a coastal location of East Antarctica. <i>Cryosphere 13(12)</i>: 3405-3412. <a href=\"https://dx.doi.org/10.5194/tc-13-3405-2019\" target=\"_blank\">https://dx.doi.org/10.5194/tc-13-3405-2019</a>","AutID":406912,"MonDate":null,"AnaDate":2019,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":355815,"RR":"<b>Delhasse, A.; Fettweis, X.; Kittel, C.; Amory, C.; Agosta, C.</b> (2018). Brief communication: Impact of the recent atmospheric circulation change in summer on the future surface mass balance of the Greenland Ice Sheet. <i>Cryosphere 12(11)</i>: 3409-3418. <a href=\"https://dx.doi.org/10.5194/tc-12-3409-2018\" target=\"_blank\">https://dx.doi.org/10.5194/tc-12-3409-2018</a>","AutID":373532,"MonDate":null,"AnaDate":2018,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":310420,"RR":"<b>Kittel, C.; Amory, C.; Agosta, C.; Delhasse, A.; Doutreloup, S.; Huot, P.-V.; Wyard, C.; Fichefet, T.; Fettweis, X.</b> (2018). Sensitivity of the current Antarctic surface mass balance to sea surface conditions using MAR. <i>Cryosphere 12(12)</i>: 3827-3839. <a href=\"https://dx.doi.org/10.5194/tc-12-3827-2018\" target=\"_blank\">https://dx.doi.org/10.5194/tc-12-3827-2018</a>","AutID":373532,"MonDate":null,"AnaDate":2018,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":338193,"RR":"<b>Fettweis, X.; Box, J.E.; Agosta, C.; Amory, C.; Kittel, C.; Lang, C.; van As, D.; Machguth, H.; Gallee, H.</b> (2017). Reconstructions of the 1900-2015 Greenland ice sheet surface mass balance using the regional climate MAR model. <i>Cryosphere 11(2)</i>: 1015-1033. <a href=\"https://hdl.handle.net/10.5194/tc-11-1015-2017\" target=\"_blank\">https://hdl.handle.net/10.5194/tc-11-1015-2017</a>","AutID":373532,"MonDate":null,"AnaDate":2017,"PeerRev":1,"outputType":"1_A1","OpenAcc":1}],"PeerRevRef":[{"BRefID":322985,"RR":"<b>Lippl, S.; Friedl, P.; Kittel, C.; Marinsek, S.; Seehaus, T.C.; Braun, M.H.</b> (2019). Spatial and temporal variability of glacier surface velocities and outlet areas on James Ross Island, northern Antarctic Peninsula. <i>Geosciences 9(9)</i>: 374. <a href=\"https://dx.doi.org/10.3390/geosciences9090374\" target=\"_blank\">https://dx.doi.org/10.3390/geosciences9090374</a>","AutID":406912,"MonDate":null,"AnaDate":2019,"PeerRev":1,"outputType":"2_PeerRevRef","OpenAcc":1}],"Abstr":[{"BRefID":391037,"RR":"<b>Kittel, C.; Jourdain, N.; Mathiot, P.; Coulon, V.; Burgard, C.; Caillet, J.; Maure, D.; Lambin, C.</b> (2024). Deciphering the impact of future individual Antarctic freshwater sources on the Southern Ocean properties and ice shelf basal melting, <b><i>in</i></b>: <i>EGU General Assembly 2024. Vienna, Austria & Online, 14-19 April 2024.</i> pp. EGU24-16331. <a href=\"https://dx.doi.org/10.5194/egusphere-egu24-16331\" target=\"_blank\">https://dx.doi.org/10.5194/egusphere-egu24-16331</a>","AutID":488170,"MonDate":null,"AnaDate":2024,"PeerRev":0,"outputType":"6_Abstr","OpenAcc":1},{"BRefID":391021,"RR":"<b>Pirlet, N.; Fichefet, T.; Vancoppenolle, M.; Rousset, C.; Mathiot, P.; Fraser, A.; Barthélemy, A.; Kittel, C.</b> (2024). Perscribing Antarctic landfast sea ice in a sea ice-ocean model, <b><i>in</i></b>: <i>EGU General Assembly 2024. Vienna, Austria & Online, 14-19 April 2024.</i> pp. EGU24-3367. <a href=\"https://dx.doi.org/10.5194/egusphere-egu24-3367\" target=\"_blank\">https://dx.doi.org/10.5194/egusphere-egu24-3367</a>","AutID":488170,"MonDate":null,"AnaDate":2024,"PeerRev":0,"outputType":"6_Abstr","OpenAcc":1},{"BRefID":365154,"RR":"<b>Coulon, V.; Klose, A.K.; Kittel, C.; Winkelmann, R.; Pattyn, F.</b> (2023). Disentangling the drivers of future Antarctic ice loss with a historically-calibrated ice-sheet model, <b><i>in</i></b>: <i>EGU General Assembly 2023. Vienna, Austria & Online, 23–28 April 2023.</i> pp. EGU23-3405. <a href=\"https://dx.doi.org/10.5194/egusphere-egu23-3405\" target=\"_blank\">https://dx.doi.org/10.5194/egusphere-egu23-3405</a>","AutID":445605,"MonDate":null,"AnaDate":2023,"PeerRev":0,"outputType":"6_Abstr","OpenAcc":1},{"BRefID":365173,"RR":"<b>Delhasse, A.; Beckmann, J.; Kittel, C.</b> (2023). How does the Greenland ice sheet respond on a medium-term time scale to various levels of warming?, <b><i>in</i></b>: <i>EGU General Assembly 2023. Vienna, Austria & Online, 23–28 April 2023.</i> pp. EGU23-8973. <a href=\"https://dx.doi.org/10.5194/egusphere-egu23-8973\" target=\"_blank\">https://dx.doi.org/10.5194/egusphere-egu23-8973</a>","AutID":488170,"MonDate":null,"AnaDate":2023,"PeerRev":0,"outputType":"6_Abstr","OpenAcc":1},{"BRefID":365132,"RR":"<b>Maure, D.; Kittel, C.; Lambin, C.; Fettweis, X.</b> (2023). High resolution atmospheric and oceanic modelling over Antarctica: a coupling interface to study sea-ice processes, <b><i>in</i></b>: <i>EGU General Assembly 2023. Vienna, Austria & Online, 23–28 April 2023.</i> pp. EGU23-16638. <a href=\"https://dx.doi.org/10.5194/egusphere-egu23-16638\" target=\"_blank\">https://dx.doi.org/10.5194/egusphere-egu23-16638</a>","AutID":488170,"MonDate":null,"AnaDate":2023,"PeerRev":0,"outputType":"6_Abstr","OpenAcc":1},{"BRefID":360344,"RR":"<b>Huot, P.-V.; Fichefet, T.; Jourdain, N.; Mathiot, P.; Rousset, C.; Kittel, C.; Fettweis, X.</b> (2019). 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