鳞片岩
铁酸盐
针铁矿
氧化还原
化学
生物矿化
菱铁矿
环境化学
非闪锌矿
铁细菌
氧化剂
矿物
磷酸铁
富集培养
微生物
磷酸盐
铁
无机化学
矿物学
化学工程
地质学
粘土矿物
方解石
细菌
生物化学
有机化学
古生物学
吸附
工程类
作者
Gengxin Zhang,Hailiang Dong,Hongchen Jiang,Ravi Kukkadapu,Jinwook Kim,Dennis D. Eberl,Zhiqin Xu
出处
期刊:American Mineralogist
[Mineralogical Society of America]
日期:2009-06-30
卷期号:94 (7): 1049-1058
被引量:34
摘要
Iron-reducing and oxidizing microorganisms gain energy through reduction or oxidation of iron, and by doing so play an important role in the geochemical cycling of iron. This study was undertaken to investigate mineral transformations associated with microbial reduction of Fe3+ and oxidation of Fe2+ in solid minerals. A fluid sample from the 2450 m depth of the Chinese Continental Scientific Drilling project was collected, and Fe3+-reducing and Fe2+-oxidizing microorganisms were enriched. The enrichment cultures displayed reduction of Fe3+ in nontronite and ferric citrate, and oxidation of Fe2+ in vivianite, siderite, and monosulfide (FeS). Additional experiments verified that the iron reduction and oxidation was biological. Oxidation of FeS resulted in the formation of goethite, lepidocrocite, and ferrihydrite as products. Although our molecular microbiological analyses detected Thermoanaerobacter ethanolicus as a predominant organism in the enrichment culture, Fe3+ reduction and Fe2+ oxidation may be accomplished by a consortia of organisms. Our results have important environmental and ecological implications for iron redox cycling in solid minerals in natural environments, where iron mineral transformations may be related to the mobility and solubility of inorganic and organic contaminants.
科研通智能强力驱动
Strongly Powered by AbleSci AI