大约184亿年前,向硫化海洋的过渡发生了
Simon W Poulton1, Philip W Fralick, Donald E Canfield
1Danish Center for Earth System Science, Institute of Biology, University of Southern Denmark, Campusvej 55, 5230 Odense M, Denmark. s.poulton@biology.sdu.dk
Nature
|September 10, 2004
概括
尽管大气氧气水平上升,但前世海洋化学并没有得到充分的氧化. 沉积物显示,硫化条件,而不仅仅是氧气,结束了带状铁层 (BIF) 沉积,影响了生命早期的进化.
科学领域:
- 地质化学 地质化学
- 古代海洋学 古代海洋学 古代海洋学
- 早期地球的条件.
背景情况:
- 原生态时代 (2.50.54亿年前) 将地球从无氧世界转变为氧世界.
- 海洋化学变化传统上归因于大气氧气和海洋氧化的上升.
- 人们认为这种氧化会导致铁的氧化,并结束约18亿年前的带状铁形成 (BIF) 沉积.
研究的目的:
- 评估对抗的假设,以结束原生代带状铁形成 (BIF) 沉积.
- 在全球BIF沉积的最后阶段调查海洋化学.
- 了解氧和硫在前生代海洋环境中的作用.
主要方法:
- 在沉积物中分析铁-硫-碳 (Fe-S-C) 系统学.
- 检查加拿大的大约18亿年前的Animikie群沉积物.
- 重建海洋化学和氧化还原条件.
主要成果:
- 在全球主要BIF沉积期后,经过证明持续的海洋无氧.
- 表明过渡到硫化底水导致BIF沉积的终止.
- 表明硫化条件可能一直持续到0.80.58亿年前.
结论:
- 海洋无氧和硫化条件,而不是仅仅氧化,是结束BIF沉积的关键.
- 这些硫化条件可能限制了初级产量,并阻止了藻类的进化.
- 原生态时代海洋的通向完全氧化的道路是复杂而漫长的.
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