Warming of the subpolar North Pacific accelerated by sea ice retreat and wind changes

Climate models predict that the Pacific will become the foremost reservoir of human-induced heat in the 21st century among all oceans, with the subpolar North Pacific (SPNP) emerging as the critical region for heat uptake. Recent observations detect alarming warming rates across the Sea of Okhotsk, the Bering Sea, and the Gulf of Alaska. Yet, processes by which these seas absorb and store the heat remain unclear. Here, by combining observational datasets and model experiments, we reveal that the heat uptake in these SPNP seas has accelerated since the 1970s due to sea-ice retreat and shifts in large-scale winds. Specifically, a decline in winter sea ice growth in shelf regions of the SPNP amplifies surface atmospheric warming. The warming in surface air temperature suppresses sensible heat release in the SPNP interior, resulting in increased heat uptake. Furthermore, altered North Pacific winds spin up the subpolar circulation gyre, propelling increased heat transport from lower latitudes into the SPNP seas. The surface-intensified warming in the SPNP enhances stratification and shoals the mixed layer, triggering more marine heatwaves and disrupting biogeochemical cycles.

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Publication Details

Journal
npj Climate and Atmospheric Science
Published
2026-09-14
DOI
https://doi.org/10.1038/s41612-026-01541-2
Primary Topic
Arctic and Antarctic ice dynamics
Type
article
Field-Weighted Citation Impact
0.00

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article

Warming of the subpolar North Pacific accelerated by sea ice retreat and wind changes

Haibo Bi, Lijing Cheng, Jing Duan, Pengfei Lin et al.
npj Climate and Atmospheric Science
Arctic and Antarctic ice dynamics
article

Warming of the subpolar North Pacific accelerated by sea ice retreat and wind changes

Haibo Bi, Lijing Cheng, Jing Duan, Pengfei Lin, Yuanlong Li, Fan Wang, Kai Ge
article en

Abstract

Climate models predict that the Pacific will become the foremost reservoir of human-induced heat in the 21st century among all oceans, with the subpolar North Pacific (SPNP) emerging as the critical region for heat uptake. Recent observations detect alarming warming rates across the Sea of Okhotsk, the Bering Sea, and the Gulf of Alaska. Yet, processes by which these seas absorb and store the heat remain unclear. Here, by combining observational datasets and model experiments, we reveal that the heat uptake in these SPNP seas has accelerated since the 1970s due to sea-ice retreat and shifts in large-scale winds. Specifically, a decline in winter sea ice growth in shelf regions of the SPNP amplifies surface atmospheric warming. The warming in surface air temperature suppresses sensible heat release in the SPNP interior, resulting in increased heat uptake. Furthermore, altered North Pacific winds spin up the subpolar circulation gyre, propelling increased heat transport from lower latitudes into the SPNP seas. The surface-intensified warming in the SPNP enhances stratification and shoals the mixed layer, triggering more marine heatwaves and disrupting biogeochemical cycles.

npj Climate and Atmospheric Science
Institute of Oceanology (CN), Qingdao National Laboratory for Marine Science and Technology (CN), Numerical Method (China) (CN), University of Chinese Academy of Sciences (CN)
Chinese Academy of Sciences, Institute of Oceanology, Chinese Academy of Sciences
Life below water
Openalex Percentile: Top 16%
Arctic and Antarctic ice dynamics
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