在超深层钻石中记录的岩层到地幔的碳循环
M E Regier1, D G Pearson2, T Stachel2
1Canadian Centre for Isotopic Microanalysis, Department of Earth and Atmospheric Sciences, University of Alberta, Edmonton, Alberta, Canada. margoregier@gmail.com.
Nature
|September 10, 2020
概括
碳化海洋地, 而不是沉积物, 是地球深层碳的主要来源. 钻石的入揭示了这种碳入过渡区,形成了钻石和下层的碳屏障.
科学领域:
- 地质化学
- 矿物学
- 地质学
背景情况:
- 碳运输到地球的地幔对于碳循环至关重要,影响气候和氧化还原状态.
- 关于碳储库 (沉积物,海洋地) 的沉降深度及其对深层地幔碳捕获的贡献存在不确定性.
- 下层层钻石 (深度>250公里) 提供了对地球深层过程和碳运输的洞察力.
研究的目的:
- 研究地球地幔中碳储存的起源和沉降路径.
- 确定沉积物或改变的海洋地是否是沉积过程中的主要碳载体.
- 限制碳沉积深度及其在地幔深层碳捕获中的作用.
主要方法:
- 在超深层钻石 (石化层到地幔下层) 中测量氧同位素含量.
- 对主体钻石的碳和同位素含量进行分析.
- 石层和石层之间的同位素特征比较.
主要成果:
- 碳化火性海洋地,而不是沉积物,是沉积到过渡区深度 (<660公里) 的碳储库.
- 亚岩层含量显示18O的丰富,表明碳酸盐丰富的海洋地融化的结晶.
- 下层地幔内含 (>660公里) 呈现出典型的同位素值,表明碳动员和钻石形成没有同位素干扰.
结论:
- 沉积的海洋地是过渡区内碳的主要来源.
- 从碳酸板化 (过渡区) 到板脱水 (下层地幔) 的过渡会造成深层碳沉降的障碍.
- 碳被调动并集中在下层地幔中形成钻石,而不会改变周围地幔的同位素特征.
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