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    莓状黄铁矿:环境与生命的示踪计

    杨雪英 龚一鸣

    杨雪英, 龚一鸣, 2011. 莓状黄铁矿:环境与生命的示踪计. 地球科学, 36(4): 643-658. doi: 10.3799/dqkx.2011.066
    引用本文: 杨雪英, 龚一鸣, 2011. 莓状黄铁矿:环境与生命的示踪计. 地球科学, 36(4): 643-658. doi: 10.3799/dqkx.2011.066
    YANG Xue-ying, GONG Yi-ming, 2011. Pyrite Framboid: Indicator of Environments and Life. Earth Science, 36(4): 643-658. doi: 10.3799/dqkx.2011.066
    Citation: YANG Xue-ying, GONG Yi-ming, 2011. Pyrite Framboid: Indicator of Environments and Life. Earth Science, 36(4): 643-658. doi: 10.3799/dqkx.2011.066

    莓状黄铁矿:环境与生命的示踪计

    doi: 10.3799/dqkx.2011.066
    基金项目: 

    国家自然科学基金项目 41072252

    国家自然科学基金项目 40872001

    国家自然科学基金项目 40921062

    国家重点基础研究计划“973”项目 2011CB808800

    详细信息
      作者简介:

      杨雪英(1978-),女,博士研究生,主要从事莓状黄铁矿的相关研究.E-mail: skysnow520@126.com

      通讯作者:

      龚一鸣,E-mail: ymgong@cug.edu.cn

    • 中图分类号: P578.2

    Pyrite Framboid: Indicator of Environments and Life

    • 摘要: 莓状黄铁矿这一奇妙的微晶(0.1~1 μm)矿物集合体(5~50 μm)自科学家首次发现(1923年)和冠名(1935年)至今一直是不同学科竞相研究的热点.主要从莓状黄铁矿的形成机制、莓状黄铁矿与环境的关系等方面回顾了莓状黄铁矿的生物成因说(1923-1969年)、非生物成因说(1969-2000年)和多元成因说(2000-现今)各研究阶段取得的进展和存在的问题,指出莓状黄铁矿作为表层生物圈、深部生物圈和地外环境与生命示踪计具有巨大潜力,提出从地球科学、生命科学、材料科学、化学和纳米科技以及凝聚态物理学融合的角度加强对莓状黄铁矿研究的建议.

       

    • 图  1  硫化亚铁转变成莓状黄铁矿示意(据Sweeney and Kaplan, 1973资料编制)

      Fig.  1.  Schematic diagram of iron monosulphide transition into pyrite framboid

      图  2  莓状黄铁矿的形成过程(据Wilkin and Barnes, 1997a资料编制)

      Fig.  2.  Sketch showing the forming process of pyrite framboid

      图  3  生物作用下硫循环示意图

      Fig.  3.  Schematic diagram of sulfur cycling under biological processes

      图  4  生物作用下的硫分馏

      Fig.  4.  Sulfur fractionation under biological processes

      图  5  海水中溶氧量与莓状黄铁矿粒径的关系(据Wignall and Newton, 1998)资料编制)

      Fig.  5.  Relations between dissolved oxygen content and size of pyrite framboid

      图  6  莓状黄铁矿结构演化(引自Merinero et al., 2008)

      Fig.  6.  Textural evolution of pyrite framboid

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