概括
对霍和斯特生物标记物的碳-13同位素分析揭示了太平洋光区域分层的米奥生变化. 这些有机地质化学数据与无机记录相关,表明从混合到分层光子区域的转变.
科学领域:
- 地质化学 地质化学
- 古海洋学是古海洋学.
- 有机地化学 有机地化学
背景情况:
- 像hopanes和steranes这样的生物标志物保留了古代环境的地化学特征.
- 蒙特雷形成提供了丰富的纪录米奥森时代的古海洋学条件.
研究的目的:
- 用特定生物标志物的碳-13 ((13) C) 同位素比率来研究米奥森时期的海洋学变化.
- 为了将有机地化学数据与无机古气候代理数据相关联.
主要方法:
- 从蒙特利形成样本中基和基生物标记物中碳-13 ((13) C) 含量的分析.
- 生物标志物同位素数据与氧-18 (delta(18) O) 记录的比较.
主要成果:
- 来自浅光区生物体的体在整个米奥生时代没有显著的同位素变化.
- 在中期和晚期的米奥生时期,从光区底部的细菌中衍生出来的霍潘在13C度上呈现下降的趋势.
- 这些有机发现与米奥生无机 (delta(18) O) 记录相平行.
结论:
- 生物标志物中的13C趋势反映了米奥生时期从太平洋的混合到分层的光区的过渡.
- 这些数据表明,在中米欧纪期间,光区的底部形成了富含二氧化碳的水质.
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