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* = student as lead or corresponding author

2022

62. *Topal, D., Q. Ding, T.J. Ballinger, E. Hanna, X. Fettweis, Z. Li, and I. Pieczka, Discrepancies between observations and climate models of large-scale wind-driven Greenland melt influence sea-level rise projections. Nature Commun. (2022)

61.Ding, Q., A. Schweiger, and I. Baxter, Nudging observed winds in the Arctic to quantify associated sea ice loss from 1979 to 2020. J. Climate (2022)

60. *Baxter, I., and Q. Ding, An optimal atmospheric circulation mode in the Arctic favoring strong summertime sea ice melting and ice-albedo feedback. J. Climate (2022)

59. Teng, H., R. Leung, G. Branstator, J. Lu, and Q. Ding, Warming Pattern over the Northern Hemisphere Midlatitudes in Boreal Summer 1979–2020. J. Climate (2022)

58. Nash, D., Carvalho, L.M.V., Jones, C., Ding, Q., Winter and spring atmospheric rivers in High Mountain Asia: climatology, dynamics, and variability. Clim Dyn (2022)

57. Buckingham, F. L., et al. Termination 1 millennial-scale rainfall events over the Sunda Shelf. Geophysical Research Letters (2022)

56. *Sun X, Q. Ding, S. Wang, D. Topal, Q. Li, C. Castro, H. Teng, R. Luo, and Y. Ding, Enhanced jet stream waviness induced by suppressed tropical Pacific convection during boreal summer. Nature Commun.(2022)

55. *Li, Z., Q. Ding, M. Steele, and A. Schweiger, Recent upper Arctic Ocean warming expedited by summertime atmospheric processes. Nat. Commun. (2022)

54. Weldeab, S. et al., Impact of Indian Ocean surface temperature gradient reversals on the Indian Summer Monsoon. Earth and Planetary Science Letters (2022)

2021

53. Li et al., Tropical teleconnection impacts on Antarctic climate changes. Nature Reviews Earth & Environment (2021)

52. Wu, Y., Lu, J., Ding, Q., and Liu, F. Linear response function reveals the most effective remote forcing in causing september Arctic Sea ice melting in CESM. Geophysical Research Letters (2021)

51. Guan, W., X. Jiang, X. Ren, G. Chen, and Q. Ding, Pacific Sea Surface Temperature Anomalies as Important Boundary Forcing in Driving the Interannual Warm Arctic–Cold Continent Pattern over the North American Sector. J. Climate (2021)

50 Wang, B., Zhou, X., Ding, Q., and Liu, J., Increasing confidence in projecting the Arctic ice-free year with emergent constraints. Environmental Research Letters (2021)

49. *Huang, Y., Ding, Q., Dong, X., Baike, X., Baxter, I., Summertime low clouds mediate the impact of the large-scale circulation on Arctic sea ice. Communications Earth and Environment (2021).

48. *Feng, X., Ding, Q. , Wu, L., Jones, C., Baxter, I., Tardif, R., Stevenson, S., Emile-Geay, J., Mitchell, J., Carvalho, L. M. V., Wang, H., and Steig, E. A multidecadal-scale tropically-driven global teleconnection over the past millennium and its recent strengthening . J. Climate, (2021).

47. Blanchard-Wrigglesworth, E., Roach, L. A., Donohoe, A., and Ding, Q. Impact of winds and Southern Ocean SSTs on Antarctic sea ice trends and variability. J. Climate, (2021).

46. *Luo, R., Ding, Q. , Wu, Z., Baxter, I., Bushuk M., Huang Y., and Dong, X. Summertime atmosphere-sea ice coupling in the Arctic simulated by CMIP5/6 models: Importance of large-scale circulation. Climate Dynamics, (2021).

45. TJ Ballinger, E Hanna, RJ Hal, JR Carr, S Brasher, EC Osterberg, J Cappelen, M Tedesco, Q Ding, SH Mernild: The role of blocking circulation and emerging open water feedbacks on Greenland cold-season air temperature variability over the last century, International Journal of Climatology, (2021)

2020

44. *D. Topal, Q Ding, J Mitchell, I Baxter, M Herein, T Haszpra, R Luo, Q Li: An internal atmospheric process determining summertime Arctic sea ice melting in the next three decedes: lessons learned from five large ensembles and multiple CMIP5 climate simulations, Journal of Climate 33 (17), 7431-7454, (2020)

43. W Guan, X Jiang, X Ren, G Chen, Q Ding: Role of atmospheric variability in driving the "warm-arctic, cold-continent" pattern over the North America sector and sea ice variability over the Chukchi-Bering sea, Geoghysical Research Letters 47 (13), e2020GL088599, (2020)

42. NC Johnson, DJ Amaya, Q Ding, Y Kosaka, H Tokinaga, SP Xie, Multidecadal modulations of key metrics of global climate change, Global and Planetary Change, 103149, (2020)

2019

41. *I. Baxter, Q Ding, A Schweiger, M L'Heureux, S Baxter, T Wang, Q Zhang, K Harnos, B Markle, D Topal, J Lu: How tropical Pacific surface cooling contributed to accelerated sea ice melt from 2007 to 2012 as ice is thinned by anthropogenic forcing, Journal of Climate 32 (24), 8583-8602, (2019)

40. HI Lee, JL Mitchell, A Tripati, JM Lora, G Chen, Q Ding: North Altantic and Pacific Quasi-Stationary Parts of Atmospheric Rivers and their implications for East Asian Monsoon onset, Geophysical Research Letters 46 (21), 12311-12320 (2019)

39. E Blanchard-Wriggleswoth, Q Ding: Tropical and midlatitude impact on seasonal polar predictability in the Community Earth System Model, Journal of Climate 32 (18), 5997-6014, (2019)

38. *KJ Harnos, M L'Heureux, Q Ding, Q Zhang: Skill of seasonal Arctic Sea Ice Extent prediction using the North Amertican Multimodel Ensemble, Journal of Climate 32 (2), 623-638, (2019)

37. Q Ding, A Schweiger, M L'Heureux, EJ Steig, DS Battisti, NC Johnson, E Blanchard-Wrigglesworth, S Po-Chedley, Q Zhang, K Harnos, M Bushuk, B Markle, I Baxter: Fingerprints of internal drivers of Arctic sea ice loss in observations and model simulations, Nature Geoscience 12 (1), 28-33, (2019)

2018

36. Q Ding, Q Fu: A warming tropical central Pacific dries the lower stratosphere, Climate Dynamics 50 (7-8), 2813-2827, (2018)

2017

35. ML L'Heureux, MK Tippett, A Kumar, AH Butler, LM Ciasto, Q Ding, K J Harnos, N C Johnson: Strong Relations Between ENSO and the Arctic Oscillation in the North American Multimodel Ensemble, Geophysical Research Letters 44 (22), (2017)

34. Q Ding, A Schweiger, M L'Heureux, DS Battisti, S Po-Chedley, N C Johnson, E Blanchard-Wrigglesworth, K Harnos, Q Zhang, R Eastman, E J Steig: Influence of high-latitude atmospheric circulation changes on summertime Arctic sea ice, Nature Climate Change 7 (4), 289, (2017)

33. BR Markle, EJ Steig, C Buizert, SW Schoenemann, CM Bitz, TJ Fudge, Joel B Pedro, Q Ding, T R Jones, J WC White, T Sowers: Global atmospheric teleconnections during Dansgaard-Oeschger events, Nature Geoscience 10 (1), 36, (2017)

2016

32. GH Roe, Q Ding, DS Battisti, P Molnar, MK Clark, CN Garzione: A modeling study of the response of Asian summertime climate to the largest geologic forcings of the past 50 Ma, Journal of Geophysical Research: Atmospheres 121 (10), 5453-5470, (2016)

31. TJ Bracegirdle, NAN Bertler, AM Carleton, Q Ding, CJ Fogwill, JC Fyfe, HH Hellmer, AY Karpechko, K Kusahara, E Larour, PA Mayewski, WN Meier, LM Polvani, JL Russell, SL Stevenson, J Turner, JM Van Wessem, WJ Van De Berg, I Wainer: A multidisciplinary perspective on climate model evaluation for Antarctica, Bulletin of the American Meteorological Society 97 (2), ES23-ES26, (2016)

2015

30. EJ Steig, K Huybers, HA Singh, NJ Steiger, Q Ding, DMW Frierson, T Popp, J WC White: Influence of West Antarctic Ice Sheet collapse on Antarctic surface climate, Geophysical Research Letters 42 (12), 4862-4868, (2015)

2014

29. B Xiang, B Wang, A Lauer, JY Lee, Q Ding: Upper tropospheric warming intensifies sea surface warming, Climate dynamics 43 (1-2), 259-270, (2014)

28. Ding Q, J. M. Wallace, D. S. Battisti, E. J. Steig, A. J. E. Gallant, H. J. Ki, L Geng: Tropical forcing of the recent rapid Arctic warming in northeastern Canada and Greenland, Nature, 509, 209-212, (2014)

27. Schoenemann, S. W., E. J. Steig, Ding Q, A. J. Schauer: Triple water-isotope record from WAIS Divide, Antarctica: controls on glacial-interglacial changes in 17Oexcess of precipitation, J. of Geophy. Research, 119 (14), 8741-8763, (2014)

26. Battisti, D, Ding Q, Gerard, R.: Coherent pan-Asian climate and isotopic response to precessional forcing, J. of Geophy. Research, 119 (21), 11,997-12,020, (2014)

25. Dutrieux P, Rydt JD, Jenkins A, Holland PR, Ha HK, Lee SH, Steig EJ, Ding Q, Abrahamsen EP, Schroder M: Strong sensitivity of Pine Island ice-shelf melting to climatic variability, Science, 343 (6167), 174-178, (2014)