Warming-Induced Vegetation Greening May Aggravate Soil Mercury Levels Worldwide

Mercury(编程语言) 环境科学 生物地球化学循环 土壤水分 温带气候 温室气体 全球变暖 环境化学 环境保护 气候变化 生态学 土壤科学 化学 生物 计算机科学 程序设计语言
作者
Wenzhe Guo,Мaodian Liu,Qianru Zhang,Yidan Deng,Zhaohan Chu,Hehao Qin,Yangmingkai Li,Yu‐Rong Liu,Haoran Zhang,Wei Zhang,Shu Tao,Xuejun Wang
出处
期刊:Environmental Science & Technology [American Chemical Society]
被引量:1
标识
DOI:10.1021/acs.est.4c01923
摘要

Mercury, a neurotoxic substance, circulates globally, significantly stored in soils through atmospheric deposition and plant decay. Despite being deposited, mercury can be remobilized and released into the atmosphere and water, enhancing its global cycle. Recent research suggests that climate warming may amplify the remobilization of soil mercury, facilitating its incorporation into food webs that humans exploit. However, the potential geospatial feedback of soil mercury levels in response to warming remains unclear. By leveraging up-to-date soil measurements and observation-driven models, we determined the amount of mercury stored in global 0–100 cm soils to be 4.3 Tg (interquartile range: 2.5–6.3 Tg). Furthermore, our analysis indicates that warming likely aggravates global soil mercury levels, particularly in many temperate areas in East Asia, North Europe, and North America (>20 ng g–1 increase by 2100) due to warming-induced vegetation greening. Critically, observation-driven models raise the possibility that implementing ambitious mercury-emission-control schemes alone may be insufficient to counterbalance the positive feedback of soil mercury concentration, while process-based biogeochemical modeling demonstrates consistent patterns that reinforce this concern. These findings hold broad implications; for example, such feedback may catalyze mercury remobilization in land-ocean continuums and exacerbate human risks, stressing the necessity for continued reductions in greenhouse gas and mercury emissions.

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