硅
碳循环
锂(药物)
前寒武纪
碳酸锂
碳酸盐
环境科学
碳纤维
地球科学
地质学
碳同位素
化学
稳定同位素比值
古生物学
环境化学
生态学
材料科学
生态系统
生物
离子
总有机碳
物理
有机化学
量子力学
离子键合
内分泌学
复合数
复合材料
作者
Boriana Kalderon-Asael,Joachim Katchinoff,Noah J. Planavsky,Ashleigh v.S. Hood,Mathieu Dellinger,Eric J. Bellefroid,David S. Jones,Axel Hofmann,Frantz Ossa Ossa,Francis A. Macdonald,Chun‐Jiang Wang,Terry T. Isson,Jack G. Murphy,John A. Higgins,A. Joshua West,Malcolm W. Wallace,Dan Asael,Philip A.E. Pogge von Strandmann
出处
期刊:Nature
[Nature Portfolio]
日期:2021-07-14
卷期号:595 (7867): 394-398
被引量:144
标识
DOI:10.1038/s41586-021-03612-1
摘要
The evolution of the global carbon and silicon cycles is thought to have contributed to the long-term stability of Earth's climate1-3. Many questions remain, however, regarding the feedback mechanisms at play, and there are limited quantitative constraints on the sources and sinks of these elements in Earth's surface environments4-12. Here we argue that the lithium-isotope record can be used to track the processes controlling the long-term carbon and silicon cycles. By analysing more than 600 shallow-water marine carbonate samples from more than 100 stratigraphic units, we construct a new carbonate-based lithium-isotope record spanning the past 3 billion years. The data suggest an increase in the carbonate lithium-isotope values over time, which we propose was driven by long-term changes in the lithium-isotopic conditions of sea water, rather than by changes in the sedimentary alterations of older samples. Using a mass-balance modelling approach, we propose that the observed trend in lithium-isotope values reflects a transition from Precambrian carbon and silicon cycles to those characteristic of the modern. We speculate that this transition was linked to a gradual shift to a biologically controlled marine silicon cycle and the evolutionary radiation of land plants13,14.
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