Early Triassic super-greenhouse climate driven by vegetation collapse
Abstract
Abstract The Permian–Triassic Mass Extinction (PTME), the most severe crisis of the Phanerozoic, has been attributed to intense global warming triggered by Siberian Traps volcanism. However, it remains unclear why super-greenhouse conditions persisted for around five million years after the volcanic episode, with one possibility being that the slow recovery of plants limited carbon sequestration. Here we use fossil occurrences and lithological indicators of climate to reconstruct spatio-temporal maps of plant productivity changes through the PTME and employ climate-biogeochemical modelling to investigate the Early Triassic super-greenhouse. Our reconstructions show that terrestrial vegetation loss during the PTME, especially in tropical regions, resulted in an Earth system with low levels of organic carbon sequestration and restricted chemical weathering, resulting in prolonged high CO 2 levels. These results support the idea that thresholds exist in the climate-carbon system whereby warming can be amplified by vegetation collapse.
Article Details
Authors (17)
Zhen Xu
Jianxin Yu
Laboratory of Theoretical and Computational Nanoscience, National Center for Nanoscience and Technology, Chinese Academy of Sciences 1 , Beijing 100190,
Hongfu Yin
Andrew S. Merdith
Jason Hilton
Bethany J. Allen
Khushboo Gurung
Paul B. Wignall
Alexander M. Dunhill
Jun Shen
Department of Radiology
David Schwartzman
Yves Goddéris
Yannick Donnadieu
Yuxuan Wang
Yinggang Zhang
Simon W. Poulton
School of Earth, Environment and Sustainability, University of Leeds
Benjamin J. W. Mills
School of Earth and Environment, University of Leeds