Publication Acknowledgments
NASA Center for Climate Simulation
The following publications made use of funding, computing resources or other support from the NASA Center for Climate Simulation (NCCS).
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2025
Using machine learning to generate a GISS ModelE calibrated physics ensemble (CPE). J. Adv. Model. Earth Syst., 17, no. 4, e2024MS004713, doi:10.1029/2024MS004713.
, , Q. Yang, , , , , , , A. Behrangi, S.J. Camargo, , , , and J.D.O. Strong, 2025:Obliquity dependence of ocean productivity and atmospheric CO2 on Earth-like worlds. Astrophys. J., 979, no. 2, 234, doi:10.3847/1538-4357/ada277.
, , , and , 2025:Naik, T.J., A.M. de Boer, H.K. Coxall, N.J. Burls, C.D. Bradshaw, Y. Donnadieu, A. Farnsworth, A. Frigola, N. Herold, M. Huber, M.P. Karami, G. Knorr, Ocean meridional overturning circulation during the early and middle Miocene. Paleoceanogr. Paleoclimatol., 40, no. 4, e2024PA005055, doi:10.1029/2024PA005055.
, Y. Li, G. Lohmann, D.J. Lunt, M. Prange, and Y. Zhang, 2025:Orenstein, P., A.H. Sobel, S.J. Camargo, The global seasonal relationship between satellite-observed cold pools and rainfall. J. Climate, 38, no. 4, 989-1003, doi:10.1175/JCLI-D-23-0218.1.
, and P. Garg, 2025:TRAPPIST-1 d: Exo-Venus, Exo-Earth, or Exo-Dead? Astrophys. J. Lett., 980, L7, doi:10.3847/2041-8213/adace0.
, 2025:Zhang, Y., Exploring precipitation triple oxygen isotope dynamics: Insights from GISS-E2.1 simulations. J. Adv. Model. Earth Syst., 17, no. 4, e2024MS004509, doi:10.1029/2024MS004509.
, N. Goodkin, J. Nusbaumer, S. He, , and X. Wang, 2025:2024
Atwood, T.B., Atmospheric CO2 emissions and ocean acidification from bottom-trawling. Front. Mar. Sci., 10, 1125137, doi:10.3389/fmars.2023.1125137.
, T. DeVries, , J.S. Mayorga, D. Bradley, R.B. Cabral, , and E. Sala, 2024:Butler, A.H., D. Shindell, Chapter 4: Impacts on climate, air quality and the ozone layer. In Global Nitrous Oxide Assessment. D.R. Kanter and A.R. Ravishankara, Eds., United Nations Environment Programme and Food and Agriculture Organization, pp. 87-131, doi:10.59117/20.500.11822/46562.
, A. Bais, E.M. Bednarz, J.S. Daniel, E. Fleming, D. Kinnison, S. Madronich, O. Morgenstern, D. Plummer, R.W. Portmann, S. Tilmes, A.R. Ravishankara, Z. Wang, S. Wei, Q. Zhang, and Y. Zhang, 2024:Observational constraint on a feedback from supercooled clouds reduces projected warming uncertainty. Commun. Earth Environ., 5, 181, doi:10.1038/s43247-024-01339-1.
, , , I. Silber, , M. Zelinka, H. Chepfer, T. Khadir, and R. Roehrig, 2024:The correlation between Arctic sea ice, cloud phase and radiation using A-train satellites. Atmos. Chem. Phys., 24, no. 13, 7899-7909, doi:10.5194/acp-24-7899-2024.
, , , , and , 2024:Influence of more mechanistic representation of particle dry deposition on historical changes in global aerosol burdens and radiative forcing. J. Adv. Model. Earth Syst., 16, no. 3, e2023MS003952, doi:10.1029/2023MS003952.
, , , , , , and , 2024:Modeling atmospheric brown carbon in the GISS ModelE Earth system model. Atmos. Chem. Phys., 24, no. 10, 6275-6304, doi:10.5194/acp-24-6275-2024.
, , , , and G.L. Schuster, 2024:Estimating the impact of a 2017 smoke plume on surface climate over northern Canada with a climate model, satellite retrievals, and weather forecasts. J. Geophys. Res. Atmos., 129, no. 15, e2023JD039396, doi:10.1029/2023JD039396.
, M. Luo, , , , , , , and , 2024:Just how river-like are atmospheric rivers? Geophys. Res. Lett., 51, no. 10, e2023GL105828, doi:10.1029/2023GL105828.
, J.F. Booth, , C. Ordaz, and J. Crespo, 2024:Lenssen, N., A GISTEMPv4 observational uncertainty ensemble. J. Geophys. Res. Atmos., 129, no. 17, e2023JD040179, doi:10.1029/2023JD040179.
, , P. Jacobs, M. Menne, and , 2024:The sensitivity of the Equatorial Pacific ODZ to particulate organic matter remineralization in a climate model under pre-industrial conditions. Ocean Model., 188, 102303, doi:10.1016/j.ocemod.2023.102303.
, , D. Nicholson, , , and , 2024:Mülmenstädt, J., Can general circulation models (GCMs) represent cloud liquid water path adjustments to aerosol-cloud interactions? Atmos. Chem. Phys., 24, no. 23, 13633-13652, doi:10.5194/acp-24-13633-2024.
, , M. Huang, P.-L. Ma, N. Mahfouz, , S.M. Burrows, M.W. Christensen, S. Dipu, A. Gettelman, L.R. Leung, , J. Quaas, A.C. Varble, H. Wang, K. Zhang, and Y. Zheng, 2024:Mülmenstädt, J., E. Gryspeerdt, S. Dipu, J. Quaas, General circulation models simulate negative liquid water path-droplet number correlations, but anthropogenic aerosols still increase simulated liquid water path. Atmos. Chem. Phys., 24, no. 12, 7331-7345, doi:10.5194/acp-24-7331-2024.
, , , , A. Gettelman, Y. Ming, Y. Zheng, P.-L. Ma, H. Wang, K. Zhang, M.W. Christensen, A.C. Varble, L.R. Leung, X. Liu, D. Neubauer, D.G. Partridge, P. Stier, and T. Takemura, 2024:Matsui, T., D. Hernandez-Deckers, S. Giangrande, T. Biscaro, A thermal-driven graupel generation process to explain dry-season convective vigor over the Amazon. Atmos. Chem. Phys., 24, no. 18, 10793-10814, doi:10.5194/acp-24-10793-2024.
, and S. Braun, 2024:Severe global cooling after volcanic super-eruptions? The answer hinges on unknown aerosol size. J. Climate, 37, no. 4, 1449-1464, doi:10.1175/JCLI-D-23-0116.1.
, , L. Polvani, , , and , 2024:Metz, C.O., Detectability simulations of a NIR surface biosignature on Proxima Centauri b with future space observatories. Planet. Sci. J., 5, 228, doi:10.3847/PSJ/ad769d.
, G.L. Villanueva, M.N. Parenteau, and V. Kofman, 2024:Mitevski, I., R. Chemke, Southern Hemisphere winter storm tracks respond differently to low and high CO2 forcings. J. Climate, 37, no. 20, 5355-5372, doi:10.1175/JCLI-D-23-0758.1.
, and L.M. Polvani, 2024:Observationally constrained regional variations of shortwave absorption by iron oxides emphasize the cooling effect of dust. Atmos. Chem. Phys., 24, no. 9, 5337-5367, doi:10.5194/acp-24-5337-2024.
, M. Gonçalves Ageitos, C. Pérez García-Pando, G.L. Schuster, , C. Di Biagio, P. Formenti, , , and , 2024:Coupled stratospheric ozone and Atlantic Meridional Overturning Circulation feedbacks on the Northern Hemisphere midlatitude jet response to 4×CO2. J. Climate, 37, no. 10, 2897-2917, doi:10.1175/JCLI-D-23-0119.1.
, , D. Waugh, , X. Zhang, G. Chiodo, , and , 2024:Rivera, A., Assessing acetone for the GISS ModelE2.1 Earth system model. Geosci. Model Dev., 17, no. 8, 3487-3505, doi:10.5194/gmd-17-3487-2024.
, , and D. Shindell, 2024:Shindell, D., R. Hunter, Premature deaths due to heat exposure: The potential effects of neighborhood-level versus city-level acclimatization within US cities. GeoHealth, 8, no. 1, e2023GH000970, doi:10.1029/2023GH000970.
, and L. Parsons, 2024:Shindell, D., Reductions in premature deaths from heat and particulate matter air pollution in South Asia, China, and the US under decarbonization. Proc. Natl. Acad. Sci., 121, no. 5, e2312832120, doi:10.1073/pnas.2312832120.
, E. Nagamoto, L. Parsons, and Y. Zhang, 2024:Shindell, D., I. Petropoulos, The impact of decarbonization on particulate soiling of solar panels. ACS EST Air, 1, no. 12, 1531-1540, doi:10.1021/acsestair.4c00105.
, L. Parsons, and M. Bergin, 2024:Shindell, D., P. Sadavarte, I. Aben, T. de Oliveira Bredariol, G. Dreyfus, L. Höglund-Isaksson, B. Poulter, M. Saunois, The methane imperative. Front. Sci., 2, 1349770, doi:10.3389/fsci.2024.1349770.
, S. Szopa, K. Rentz, L. Parsons, Z. Qu, , and J.D. Maasakkers, 2024:Exploring the ENSO modulation of the QBO periods with GISS E2.2 models. Atmos. Chem. Phys., 24, no. 1, 509-532, doi:10.5194/acp-24-509-2024.
, , , , , , , and , 2024:2023
Understanding model-observation discrepancies in satellite retrievals of atmospheric temperature using GISS ModelE. J. Geophys. Res. Atmos., 128, no. 1, e2022JD037523, doi:10.1029/2022JD037523.
, , , , , , , and D.T. Shindell, 2023:An observation-based method to assess tropical stratocumulus and shallow cumulus clouds and feedbacks in CMIP6 and CMIP5 models. Environ. Res. Commun., 5, no. 4, 045001, doi:10.1088/2515-7620/acc78a.
, , , R. Pincus, and H. Chepfer, 2023:Diverging global dry and humid heat responses to modern irrigation. Earth Interact., 27, no. 1, e230006, doi:10.1175/EI-D-23-0006.1.
, , and , 2023:Gomez, J., R.J. Allen, S.T. Turnock, L.W. Horowitz, The projected future degradation in air quality is caused by more abundant natural aerosols in a warmer world. Commun. Earth Environ., 4, no. 1, 22, doi:10.1038/s43247-023-00688-7.
, , D. Olivié, E.S. Thomson, and P. Ginoux, 2023:Emissions background, climate, and season determine the impacts of past and future pandemic lockdowns on atmospheric composition and climate. Earth's Future, 11, no. 5, e2022EF002959, doi:10.1029/2022EF002959.
, , , and , 2023:Im, U., Present-day and future PM2.5 and O3-related global and regional premature mortality in the EVAv6.0 health impact assessment model. Environ. Res., 216, no. 4, 114702, doi:10.1016/j.envres.2022.114702.
, L.M. Frohn, C. Geels, , and J. Brandt, 2023:Ji, A., J.F. Kasting, G.J. Cooke, D.R. Marsh, and Comparison between ozone column depths and methane lifetimes computed by one- and three-dimensional models at different atmospheric O2 levels. Roy. Soc. Open Sci., 10, no. 5, 230056, doi:10.1098/rsos.230056.
, 2023:Law, K.S, J.L. Hjorth, J.B. Pernov, C. Whaley, H. Skov, M. Collaud Coen, J. Langner, S.R. Arnold, D.W Tarasick, J. Christensen, M. Deushi, P. Effertz, Arctic tropospheric ozone trends. Geophys. Res. Lett., 50, no. 22, e2023GL103096, doi:10.1029/2023GL103096.
, M. Gauss, U. Im, N. Oshima, I. Petropavlovskikh, D. Plummer, , S. Tsyro, S. Solberg, and S.T Turnock, 2023:Li, Q., J. Marshall, Global climate impacts of Greenland and Antarctic meltwater: A comparative study. J. Climate, 36, no. 11, 3571-3590, doi:10.1175/JCLI-D-22-0433.1.
, , , and , 2023:Martin, Z.K., I.R. Simpson, P. Lin, The lack of a QBO-MJO connection in climate models with a nudged stratosphere. J. Geophys. Res. Atmos., 128, no. 17, e2023JD038722, doi:10.1029/2023JD038722.
, Q. Tang, J.M. Caron, C.-C. Chen, H. Kim, L.R. Leung, J.H. Richter, and S. Xie, 2023:Connections between upper tropospheric and lower stratospheric circulation responses to increased CO2. J. Climate, 36, no. 12, 4101-2112, doi:10.1175/JCLI-D-22-0851.1.
, D. Waugh, and , 2023:Non-monotonic feedback dependence under abrupt CO2 forcing due to a North Atlantic pattern effect. Geophys. Res. Lett., 50, no. 14, e2023GL103617, doi:10.1029/2023GL103617.
, Y. Dong, L.M. Polvani, M. Rugenstein, and , 2023:Dominant cloud controlling factors for low-level cloud fraction: Subtropical versus extratropical oceans. Geophys. Res. Lett., 50, no. 19, e2023GL104496, doi:10.1029/2023GL104496.
, , and J.F. Booth, 2023:Atmospheric response to a collapse of the North Atlantic circulation under a mid-range future climate scenario: A regime shift in Northern Hemisphere dynamics. J. Climate, 36, no. 19, 6669-6693, doi:10.1175/JCLI-D-22-0841.1.
, , , , , , , , and , 2023:Parsons, L.A., D.T. Shindell, Geophysical uncertainties in air pollution exposure and benefits of emissions reductions for global health. Earth's Future, 11, no. 9, e2023EF003839, doi:10.1029/2023EF003839.
, and E. Nagamoto, 2023:Previdi, M., J.-F. Lamarque, A.M. Fiore, Arctic warming in response to regional aerosol emissions reductions. Environ. Res. Climate, 2, no. 3, 035011, doi:10.1088/2752-5295/ace4e8.
, D.T. Shindell, G. Correa, and , 2023:Raiter, D., L.M. Polvani, I. Mitevski, A.G. Pendergrass, and Little change in apparent hydrological sensitivity at large CO2 forcing. Geophys. Res. Lett., 50, no. 18, e2023GL104954, doi:10.1029/2023GL104954.
, 2023:Ren, X., D.J. Lunt, E. Hendy, A. von der Heydt, A. Abe-Ouchi, B.L. Otto-Bliesner, C.J.R. Williams, C. Stepanek, C. Guo, D. Chandan, G. Lohmann, J.C. Tindall, The hydrological cycle and ocean circulation of the Maritime Continent in the mid-Pliocene: Results from PlioMIP2. Clim. Past, 19, no. 10, 20253-2077, doi:10.5194/cp-19-2053-2023.
, , M. Kageyama, M.L.J. Baatsen, N. Tan, Q. Zhang, R. Feng, W.-L. Chan, W.R. Peltier, X. Li, Y. Kamae, Z. Zhang, and A.M. Haywood, 2023:Winds and meltwater together lead to Southern Ocean surface cooling and sea ice expansion. Geophys. Res. Lett., 50, no. 24, e2023GL105948, doi:10.1029/2023GL105948.
, , , E. Blanchard-Wrigglesworth, T.W.N. Haine, and , 2023:Stochastic bifurcation of the North Atlantic Circulation under a mid-range future climate scenario with the NASA-GISS ModelE. J. Climate, 36, no. 18, 6141-6161, doi:10.1175/JCLI-D-22-0536.1.
, , , , , , , , , and , 2023:CERESMIP: A climate modeling protocol to investigate recent trends in the Earth's energy imbalance. Front. Clim., 5, 1202161, doi:10.3389/fclim.2023.1202161.
, T. Andrews, , P.J. Durack, N.G. Loeb, V. Ramaswamy, N.P. Arnold, M.G. Bosilovich, J. Cole, L.W. Horowitz, G.C. Johnson, J.M. Lyman, B. Medeiros, T. Michibata, D. Olonscheck, D. Paynter, S.P. Raghuraman, M. Schulz, D. Takasuka, V. Tallapragada, P.C. Taylor, and T. Ziehn, 2023:Anomalous meltwater from ice sheets and ice shelves is a historical forcing. Geophys. Res. Lett., 50, no. 24, e2023GL106530, doi:10.1029/2023GL106530.
, , , , Q. Li, C.D. Rye, , J.C. Marshall, and J.J.M. Busecke, 2023:Shindell, D., L. Parsons, The important role of African emissions reductions in projected local rainfall changes. NPJ Clim. Atmos. Sci., 6, 47, doi:10.1038/s41612-023-00382-7.
, K. Hicks, J. Kuylenstierna, and C. Heaps, 2023:Investigating hydroclimatic impacts of the 168-158 BCE volcanic quartet and their relevance to the Nile River basin and Egyptian history. Clim. Past, 19, no. 1, 249-275, doi:10.5194/cp-19-249-2023.
, , , F. Ludlow, and J.G. Manning, 2023:Earth-system-model evaluation of cloud and precipitation occurrence for supercooled and warm clouds over the Southern Ocean's Macquarie Island. Atmos. Chem. Phys., 23, no. 16, 9037-9069, doi:10.5194/acp-23-9037-2023.
, , I. Silber, , , J. Mülmenstädt, A. Protat, S. Alexander, and A. McDonald, 2023:Tiwari, S., R.D. Ramos, F.S.R. Pausata, On the remote impacts of mid-Holocene Saharan vegetation on South American hydroclimate: A modelling intercomparison. Geophys. Res. Lett., 50, no. 12, e2022GL101974, doi:10.1029/2022GL101974.
, M. Griffiths, H. Beltrami, I. Wainer, A. de Vernal, , and D. Chandan, 2023:Exploring climate with obliquity in a variable-eccentricity Earth-like world. Astron. J., 166, no. 6, 227, doi:10.3847/1538-3881/ad0373.
, N. Georgakarakos, and T.L. Clune, 2023:Weierbach, H., The impact of background ENSO and NAO conditions and anomalies on the modeled response to Pinatubo-sized volcanic forcing. Atmos. Chem. Phys., 23, no. 24, 15491-15505, doi:10.5194/acp-23-15491-2023.
, and , 2023:Weiffenbach, J.E., M.L.J. Baatsen, H.A. Dijkstra, A.S. von der Heydt, A. Abe-Ouchi, E.C. Brady, W.-L. Chan, D. Chandan, Unraveling the mechanisms and implications of a stronger mid-Pliocene AMOC in PlioMIP2. Clim. Past, 19, no. 1, 61-85, doi:10.5194/cp-19-61-2023.
, C. Contoux, R. Feng, C. Guo, Z. Han, A.M. Haywood, Q. Li, X. Li, G. Lohmann, D.J. Lunt, K.H. Nisancioglu, B.L. Otto-Bliesner, W.R. Peltier, G. Ramstein, , C. Stepanek, N. Tan, J.C. Tindall, C.J.R. Williams, Q. Zhang, and Z. Zhang, 2023:Whaley, C.H., K.S. Law, J.L. Hjorth, H. Skov, S.R. Arnold, J. Langner, J.B. Pernov, R.-Y. Chien, J.H. Christensen, M. Deushi, X. Dong, Arctic tropospheric ozone: Assessment of current knowledge and model performance. Atmos. Chem. Phys., 23, no. 1, 637-661, doi:10.5194/acp-23-637-2023.
, M. Flanner, J.S. Fu, M. Gauss, U. Im, L. Marelle, T. Onishi, N. Oshima, D.A. Plummer, L. Pozzoli, J.-C. Raut, R. Skeie, M.A. Thomas, , S. Tsyro, S.T. Turnock, K. von Salzen, and D.W. Tarasick, 2023:Zhang, X., D.W. Waugh, and Dependence of Northern Hemisphere tropospheric transport on the midlatitude jet under abrupt CO2 increase. J. Geophys. Res. Atmos., 128, no. 13, e2022JD038454, doi:10.1029/2022JD038454.
, 2023:2022
The turning point of the aerosol era. J. Adv. Model. Earth Syst., 14, no. 12, e2022MS003070, doi:10.1029/2022MS003070.
, , , , , , and , 2022:Bowman, H., S. Turnock, Changes of anthropogenic precursor emissions drive shifts of ozone seasonal cycle throughout northern midlatitude troposphere. Atmos. Chem. Phys., 22, no. 5, 3507-3524, doi:10.5194/acp-22-3507-2022.
, , M. Deushi, N. Oshima, F.M. O'Connor, L. Horowitz, T. Wu, J. Zhang, and D.D. Parrish, 2022:Brown, F., G.A. Folberth, S. Sitch, The ozone-climate penalty over South America and Africa by 2100. Atmos. Chem. Phys., 22, no. 18, 12331-12352, doi:10.5194/acp-22-12331-2022.
, M. Bauters, P. Boeckx, A.W. Cheesman, M. Deushi, I. Dos Santos Vieira, C. Galy-Lacaux, J. Haywood, J. Keeble, L.M. Mercado, F.M. O'Connor, N. Oshima, , and H. Verbeeck, 2022:Southern Ocean solar reflection biases in CMIP6 models linked to cloud phase and vertical structure representations. Geophys. Res. Lett., 49, no. 22, e2022GL099777, doi:10.1029/2022GL099777.
, T. Khadir, H. Chepfer, and M. Chiriaco, 2022:Responses of compound daytime and nighttime warm-dry and warm-humid events to individual anthropogenic forcings. Environ. Res. Lett., 17, no. 8, 084015, doi:10.1088/1748-9326/ac80ce.
, , , , , , and , 2022:Volcanic stratospheric injections up to 160 Tg(S) yield a Eurasian winter warming indistinguishable from internal variability. Atmos. Chem. Phys., 22, no. 13, 8843-8862, doi:10.5194/acp-22-8843-2022.
, and L.M. Polvani, 2022:Improved representation of atmospheric dynamics in CMIP6 models removes climate sensitivity dependence on Hadley Cell climatological extent. Atmos. Sci. Lett., 23, no. 3, e1073, doi:10.1002/asl.1073.
, , and L. Polvani, 2022:A simple model for tropical convective cloud shield area growth and decay rates informed by geostationary IR, GPM, and Aqua/AIRS satellite data. J. Geophys. Res. Atmos., 127, no. 10, e2021JD035599, doi:10.1029/2021JD035599.
, R. Roca, T. Fiolleau, , and , 2022:Klovenski, E.R., Y. Wang, Interactive biogenic emissions and drought stress effects on atmospheric composition in NASA GISS ModelE. Atmos. Chem. Phys., 22, no. 10, 13303-13323, doi:10.5194/acp-22-13303-2022.
, , , , , A. Guenther, X. Jiang, W. Li, and N. Lin, 2022:Optical properties of morphologically complex black carbon aerosols: Effects of coatings. J. Quant. Spectrosc. Radiat. Transfer, 281, 108080, doi:10.1016/j.jqsrt.2022.108080.
, G.L. Schuster, H. Moosmüller, S. Stamnes, , and , 2022:Soil carbon losses reduce soil moisture in global climate model simulations. Earth Interact., 26, no. 1, 195-208, doi:10.1175/EI-D-22-0003.1.
, , , , T. Hengl, J. Sanderman, G.J.M. De Lannoy, and , 2022:Asymmetric warming/cooling response to CO2 increase/decrease due to non-logarithmic forcing, not feedbacks. Geophys. Res. Lett., 49, no. 5, e2021GL097133, doi:10.1029/2021GL097133.
, L. Polvani, and , 2022:Future climate change under SSP emission scenarios with GISS-E2.1. J. Adv. Model. Earth Syst., 14, no. 7, e2021MS002871, doi:10.1029/2021MS002871.
, , , , , , , , , , , , R. Bleck, , , , T.L. Clune, , C.A. Cruz, , , , , D. Kim, , , , , , , S. McDermid, , L.T. Murray, , , C.P. García-Pando, , , , D.T. Shindell, S. Sun, , , , , and , 2022:Ramos, R., Constraining clouds and convective parameterizations in a climate model using paleoclimate data. J. Adv. Model. Earth Syst., 14, no. 8, e2021MS002893, doi:10.1029/2021MS002893.
, M.L. Griffiths, , , J.F. Tierney, F.S.R. Pausata, and J Nusbaumer, 2022:Asymmetry in the seasonal cycle of Antarctic sea ice due to insolation. Nat. Geosci., 15, no. 4, 277-281, doi:10.1038/s41561-022-00913-6.
, I. Eisenman, T.J. Wagner, E. Blanchard-Wrigglesworth, and C.M. Bitz, 2022:Russotto, R.D., J.D.O. Strong, S.J. Camargo, A.H. Sobel, Improved representation of tropical cyclones in the NASA GISS-E3 GCM. J. Adv. Model. Earth Syst., 14, no. 1, e2021MS002601, doi:10.1029/2021MS002601.
, , , Y. Moon, and D. Kim, 2022:Schmidt, F., Circumpolar ocean stability on Mars 3 Gy ago. Proc. Natl. Acad. Sci., 119, no. 4, e2112930118, doi:10.1073/pnas.2112930118.
, S. Bouley, A. Séjourné, and , 2022:Sergeev, D.E., T.J. Fauchez, M. Turbet, I.A. Boutle, The TRAPPIST-1 Habitable Atmosphere Intercomparison (THAI). Part II: Moist cases — The two waterworlds. Planet. Sci. J., 3, no. 9, 212, doi:10.3847/PSJ/ac6cf2.
, , E.T. Wolf, S.D. Domagal-Goldman, F. Forget, J. Haqq-Misra, R.K. Kopparapu, F.H. Lambert, J. Manners, and N.J. Mayne, 2022:Shindell, D., Premature deaths in Africa due to particulate matter under high and low warming scenarios. GeoHealth, 6, no. 5, e2022GH000601, doi:10.1029/2022GH000601.
, L. Parsons, E. Nagamoto, and Chang J., 2022:Silber, I., R.C. Jackson, The Earth Model Column Collaboratory (EMC2) v1.1: An open-source ground-based lidar and radar instrument simulator and subcolumn generator for large-scale models. Geosci. Model Dev., 15, no. 2, 901-927, doi:10.5194/gmd-15-901-2022.
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