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首页> 外文期刊>Science of the total environment >Microbial mobilization of arsenic from iron-bearing clay mineral through iron, arsenate, and simultaneous iron-arsenate reduction pathways
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Microbial mobilization of arsenic from iron-bearing clay mineral through iron, arsenate, and simultaneous iron-arsenate reduction pathways

机译:通过铁,砷酸盐和同时铁 - 砷酸盐还原途径从轴承粘土矿物质的微生物动员

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摘要

Clay minerals are an important host for arsenic in many arsenic-affected areas. The role of bioreduction of structural Fe(Ⅲ) in clay minerals in the mobilization of arsenic from clay minerals, however, still remains unclear. In this study, Fe(Ⅲ) reducing bacterium, As(Ⅴ) reducing bacterium, and Fe(Ⅲ)-As(Ⅴ) reducing bacterium were employed to investigate the possible bioreduction pathways for arsenic release from Nontronite NAu-2. Results demonstrated that microbial reduction controlled arsenic mobilization from NAu-2 through Fe(Ⅲ), As(Ⅴ), and simultaneous Fe(Ⅲ)-As(Ⅴ) reduction pathways. Although the bioreduction of structural Fe(Ⅲ) led to a negligible dissolution of Nau-2, it triggered a significant release of arsenic from Nau-2. The bioreduction of tetrahedral Fe (Ⅲ) initiated the release of As(Ⅴ), and the further bioreduction of octahedral Fe(Ⅲ) induced the release of As (Ⅲ) in Nau-2. In addition, bioreduction of As(Ⅴ) resulted in the desorption and transformation of As(Ⅴ) from Nau-2. Simultaneous bioreduction of Fe(Ⅲ) and As(Ⅴ) led to an almost complete release of As(Ⅴ) from Nau-2. These findings suggest that simultaneous Fe(Ⅲ)-As(Ⅴ) reduction was the dominant pathway governing As (Ⅴ) release from Nau-2, while structural Fe(Ⅲ) reduction controlled As(Ⅲ) release from Nau-2. Therefore, the bioreduction of iron-bearing clay minerals has a great potential for arsenic mobilization in the subsurface environment.
机译:粘土矿物是许多受砷影响地区的砷的重要宿主。然而,粘土矿物质在粘土矿物中粘土矿物质中的结构Fe(Ⅲ)的作用仍然尚不清楚。在该研究中,使用Fe(Ⅲ)还原细菌,作为还原细菌和Fe(Ⅲ)-As(Ⅳ)降低细菌来研究来自非巨石NAU-2的砷释放的可能生物诱导途径。结果表明,从Nau-2到Fe(Ⅲ),AS(Ⅳ)和同时Fe(Ⅲ)-As(ⅴ)还原途径的微生物还原控制砷。尽管结构Fe(Ⅲ)的生物测量导致NAU-2的溶解局部可忽略不计,但它引发了来自NAU-2的砷的显着释放。四面体Fe(Ⅲ)的生物测量引发了(Ⅵ)的释放,八面体Fe(Ⅲ)的进一步生物测量诱导了Nau-2中As(Ⅲ)的释放。此外,AS(Ⅵ)的生物诱导导致来自NAU-2的(Ⅵ)的解吸和转化。 Fe(Ⅲ)的同时疾病和(ⅴ)导致来自NAU-2的几乎完全释放为(ⅴ)。这些研究结果表明,同时Fe(Ⅲ)-As(Ⅳ)还原是用Nau-2释放的主要途径,而结构Fe(Ⅲ)减少可从Nau-2中释放(Ⅲ)。因此,铁轴承粘土矿物的生物凝固在地下环境中具有砷动员的巨大潜力。

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  • 来源
    《Science of the total environment》 |2021年第1期|144613.1-144613.8|共8页
  • 作者单位

    Key Laboratory of Drinking Water Science and Technology Research Center for Eco-Environmental Sciences Chinese Academy of Sciences Beijing 100085 PR China University of Chinese Academy of Sciences Beijing 100049 PR China;

    Key Laboratory of Drinking Water Science and Technology Research Center for Eco-Environmental Sciences Chinese Academy of Sciences Beijing 100085 PR China;

    Key Laboratory of Drinking Water Science and Technology Research Center for Eco-Environmental Sciences Chinese Academy of Sciences Beijing 100085 PR China;

    Key Laboratory of Drinking Water Science and Technology Research Center for Eco-Environmental Sciences Chinese Academy of Sciences Beijing 100085 PR China University of Chinese Academy of Sciences Beijing 100049 PR China;

    Key Laboratory of Drinking Water Science and Technology Research Center for Eco-Environmental Sciences Chinese Academy of Sciences Beijing 100085 PR China University of Chinese Academy of Sciences Beijing 100049 PR China;

    Key Laboratory of Drinking Water Science and Technology Research Center for Eco-Environmental Sciences Chinese Academy of Sciences Beijing 100085 PR China University of Chinese Academy of Sciences Beijing 100049 PR China;

    Key Laboratory of Drinking Water Science and Technology Research Center for Eco-Environmental Sciences Chinese Academy of Sciences Beijing 100085 PR China University of Chinese Academy of Sciences Beijing 100049 PR China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Arsenic mobilization; Nontronite NAu-2; Tetrahedral Fe(Ⅲ); Octahedral Fe(Ⅲ); Bioreduction pathway;

    机译:砷动员;nontronite nau-2;四面体Fe(Ⅲ);八面体Fe(Ⅲ);生物防盗途径;

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