生物集群灭绝
缺氧水域
晚泥盆纪灭绝
环境科学
惰质
地质学
生态系统
泥盆纪
消光(光学矿物学)
碳循环
大气氧
二叠纪-三叠纪灭绝事件
地球科学
海洋学
古生物学
滞后
生态学
大气科学
天体生物学
大气(单位)
地质记录
海平面
羽流
扰动(地质)
陆地生态系统
油页岩
铅(地质)
自然地理学
彗星
作者
Man Lu,Yongge Sun,Guoqiang Duan,Takehito Ikejiri,Naihao Liu,Qingyong Luo,Dawei Lv,Richard Carroll,Yuehan Lu
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2026-04-01
卷期号:12 (14): eady4534-eady4534
标识
DOI:10.1126/sciadv.ady4534
摘要
Extensive wildfire profoundly influences Earth system feedback and can drive major ecosystem disturbances, yet its timing and role in the Late Devonian Frasnian-Famennian (F-F) mass extinction remain unclear. To determine whether wildfires were a driver or consequence of contemporaneous oceanic anoxic events (OAEs), we present a high temporal resolution multiproxy record (biomarkers, microfossils, and trace metals) from the Chattanooga Shale in the southeastern United States. Pyrogenic PAHs and inertinite macerals increased after peaks in δ13Corg and redox-sensitive proxies, indicating that wildfire activity intensified in response to post-OAEs oxygen rise rather than triggering anoxia. Modeling of global δ13C records reveals that the lag between OAEs/organic carbon burial and wildfire onset reflects the time required for atmospheric oxygen to accumulate to levels sustaining widespread combustion. Together, these results provide the first high-resolution dataset capable of resolving the temporal sequence between OAEs and wildfire activity, enabling the establishment of their causal linkage during the catastrophic F-F environmental disruptions.
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