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西北大学 地质学系/大陆演化与早期生命全国重点实验室/陕西省早期生命与环境重点实验室,陕西 西安 710069
[ "黄康俊,西北大学地质学系教授,博士生导师。国家级高层次青年人才计划、陕西省高层次人才引进计划青年项目入选者,候德封矿物岩石地球化学青年科学家奖获得者。主要从事表生地球化学方面的教学和研究工作,重点开展表生地质过程金属稳定同位素分馏机理及其古环境示踪方面的研究。主持国家重点研发计划子课题、国家自然科学基金等多项课题,参与国家自然科学基金重大项目和中科院“西部之光”交叉团队等项目。以第一或通讯作者在PNAS、EPSL、GCA等国际权威学术期刊等发表SCI论文70余篇,研究成果荣获高等学校科学研究优秀成果二等奖。目前担任中国古生物学会地球生物学分会副理事长、中国地质学会盐类资源环境专业委员会委员,以及Journal of Earth Science、《地球科学》和《西北大学学报(自然科学版)》等学术期刊青年编委。" ]
收稿日期:2024-12-17,
纸质出版日期:2025-06-25
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黄康俊, 夏文鹏, 杨奕曜, 等. 黑色页岩与宜居地球的形成与演化[J]. 西北大学学报(自然科学版), 2025,55(3):523-538.
HUANG Kangjun, XIA Wenpeng, YANG Yiyao, et al. Black shale and the formation and evolution of the habitable Earth[J]. Journal of northwest university (natural science edition), 2025, 55(3): 523-538.
黄康俊, 夏文鹏, 杨奕曜, 等. 黑色页岩与宜居地球的形成与演化[J]. 西北大学学报(自然科学版), 2025,55(3):523-538. DOI: 10.16152/j.cnki.xdxbzr.2025-03-004.
HUANG Kangjun, XIA Wenpeng, YANG Yiyao, et al. Black shale and the formation and evolution of the habitable Earth[J]. Journal of northwest university (natural science edition), 2025, 55(3): 523-538. DOI: 10.16152/j.cnki.xdxbzr.2025-03-004.
黑色页岩沉积记录了宜居地球形成与演化的关键阶段,涵盖超大陆聚散、大规模气候波动、古海洋氧化还原条件变化以及生物辐射与灭绝等重大地质事件。黑色页岩的形成通常与海洋环境密切相关,不仅反映了地质历史时期海洋氧化还原状态与生命演化的相互作用,还记录了氮、磷、铁等关键生命元素在生物圈与非生物圈之间的循环与转化信息。该研究系统探究了黑色页岩的沉积特征及沉积模式,黑色页岩对关键生命元素、生物地球化学循环以及古海洋氧化还原状态的指示;同时,探讨了黑色页岩的风化作用对全球碳循环及环境污染等方面的影响;最后,梳理了当前黑色页岩在地球宜居性研究中存在的主要问题,并展望其未来的发展方向。
The deposition of black shales records critical stages in the formation and evolution of a habitable Earth
encompassing the convergence and breakup of supercontinents
large-scale climate changes
fluctuations in ancient ocean redox conditions
and biological radiations and extinctions. The formation of black shales is typically associated with marine environments. It not only reflects the interactions between oceanic redox states and biological evolution throughout geological history
but also preserves information on the cycling and transformation of essential life elements-such as nitrogen
phosphorus
and iron-between the biosphere and the abiotic environment. This study systematically reviews the sedimentary characteristics and depositional models of black shales
as well as their implications for the biogeochemical cycling of key bioessential elements and the reconstruction of paleo-ocean redox conditions. Additionally
it explores the impact of black shale weathering on the global carbon cycle and environmental pollution. Finally
the paper summarizes the current challenges in using black shales for studies on Earth's habitability and discusses potential future research directions
providing insights for further investigations.
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