环境科学
土壤碳
表土
气候变化
土壤水分
总有机碳
微粒
颗粒有机碳
代表性浓度途径
全球变暖
碳纤维
减缓气候变化
脆弱性(计算)
固碳
环境保护
全球变化
温室气体
土壤有机质
大气科学
气候模式
基线(sea)
二氧化碳
碳循环
地球大气中的二氧化碳
气候学
全球变暖的影响
大气碳循环
累积效应
作者
Siyi Sun,M. Francesca Cotrufo,R. A. Viscarra Rossel,Carsten W. Mueller,Morimaru Kida,Ailsa G. Hardie,Alec Mackay,Alexander H. Krichels,Wulf Amelung,Amit Kumar,A. Suleymanov,Baoku Shi,Bernard Jackson Cosby,César Plaza,César Terrer,Chang Liang,Chang Liao,Christopher Just,Ding Guo,Emanuele Lugato
标识
DOI:10.1038/s41467-026-71321-2
摘要
Soil organic carbon (SOC) comprises particulate (POC) and mineral-associated organic carbon (MAOC), which differ in formation, stabilization, and loss mechanisms. While the current global distribution of POC and MAOC is characterized, their vulnerability under future climate scenarios remains unclear. Using 3284 topsoil (0-30 cm) observations from six continents, we identify high-latitude soils as global hotspots of SOC vulnerability under shared socioeconomic pathway scenarios (SSP126, SSP245, and SSP585). Under a high-emission scenario (SSP585), high-latitude soils are projected to lose substantial POC by 2100, accounting for about 81 ± 10% of total SOC losses. These declines are driven by the high proportion of SOC stored as POC (fPOC) and its high temperature sensitivity. We show that fPOC is a robust indicator of SOC vulnerability to climate change. Globally, the projected POC decline corresponds to a cumulative carbon dioxide (CO2) release of 81.34 Pg CO2-equivalent by 2100, highlighting the importance of preserving POC to mitigate climate feedbacks. High-latitude soils are future soil organic carbon loss hotspots, with losses dominated by particulate organic carbon (POC). The fraction of POC in total SOC (fPOC) is a key indicator, emphasizing the climate importance of preserving POC.
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