冻土带
永久冻土
植被(病理学)
环境科学
地形
热岩溶
北极的
生态演替
自然地理学
生态系统
下跌
荒地
地质学
北极植被
气候变化
水文学(农业)
生产力
泰加语
地形地貌
沉积作用
扰动(地质)
遥感
风积作用
全球变暖
土壤科学
作者
Zhuoxuan Xia,Lin Liu,Ingmar Nitze,Nina Nesterova,Jurjen van der Sluijs,Xuetao Zhu,Tonghua Wu,Ksenia Ermokhina,Emma Hall,R. Khairullin,Artem Khomutov,Mark J. Lara
标识
DOI:10.1038/s41558-026-02603-2
摘要
Abstract Warming permafrost is driving widespread terrain destabilization and collapse through retrogressive thaw slumps, stripping vegetation and releasing soil carbon. Despite increasing thaw slump disturbances in permafrost regions, the time and patterns of vegetation recovery remain uncertain. Here we estimate surface greenness recovery times and compositional changes following disturbances across northern tundra regions, using data from remote sensing imagery. Our findings reveal that low-stature vegetation recolonizes barren terrain in low-Arctic sites within a decade, followed by erect shrubs, resulting in greener surface than undisturbed areas. In contrast, vegetation recovery in high-Arctic and high-elevation sites requires over 30 years. Greenness recovery time ( τ , years) varies widely but can be accurately predicted by a power-law function (1.35 × (GPP) −1.68 , P < 0.05) based on solar-induced chlorophyll fluorescence-derived ecosystem gross primary productivity (GPP, kgC m −2 yr −1 ). We present a regionally scalable framework to quantify surface greenness recovery times and reveal divergent vegetation succession pathways following permafrost disturbances across tundra regions.
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