硼钼矿在环境中的转化研究进展:对重金属稳定的启示

IF 6.9 Q1 Environmental Science
Miao Shi , Qingzhu Li , Qingwei Wang , Xuelei Yan , Bensheng Li , Linhai Feng , Chao Wu , Rongrong Qiu , Hongkai Zhang , Zhihui Yang , Weichun Yang , Qi Liao , Liyuan Chai
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引用次数: 1

摘要

Birnessite在重金属被保留并易于转化的自然环境中无处不在。水钠石的表面性质和结构随着外部环境条件的变化而变化,这也影响了重金属的命运。阐明水钠石相变过程对重金属的影响和机理是采取有效措施防治重金属污染的关键。因此,本文首先对水钠石的四种转化途径进行了综述。其次,提出了转化途径与环境条件的关系。这些相关的环境条件包括非生物因素(例如,共存离子、pH、氧气压力、温度、电场、光照、老化、压力)和生物因素(如微生物、生物分子)。相变是由Mn(III)的关键中间体通过层间缩合、折叠、中和歧化和溶解-再结晶机制实现的。Mn的AOS(平均氧化态)和层间距与水钠石的相变密切相关。最后,总结了水钠石转化过程中重金属的固定化机理。它们涉及同晶取代、氧化还原、络合、水合/脱水等。水镁石的转化及其对重金属的影响将有助于理解和预测重金属的行为以及锰氧化物/氢氧化物在自然和工程环境中的关键相。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A review on the transformation of birnessite in the environment: Implication for the stabilization of heavy metals

Birnessite is ubiquitous in the natural environment where heavy metals are retained and easily transformed. The surface properties and structure of birnessite change with the changes in external environmental conditions, which also affects the fate of heavy metals. Clarifying the effect and mechanism of the birnessite phase transition process on heavy metals is the key to taking effective measures to prevent and control heavy metal pollution. Therefore, the four transformation pathways of birnessite are summarized first in this review. Second, the relationship between transformation pathways and environmental conditions is proposed. These relevant environmental conditions include abiotic (e.g., co-existing ions, pH, oxygen pressure, temperature, electric field, light, aging, pressure) and biotic factors (e.g., microorganisms, biomolecules). The phase transformation is achieved by the key intermediate of Mn(III) through interlayer-condensation, folding, neutralization-disproportionation, and dissolution-recrystallization mechanisms. The AOS (average oxidation state) of Mn and interlayer spacing are closely correlated with the phase transformation of birnessite. Last but not least, the mechanisms of heavy metals immobilization in the transformation process of birnessite are summed up. They involve isomorphous substitution, redox, complexation, hydration/dehydration, etc. The transformation of birnessite and its implication on heavy metals will be helpful for understanding and predicting the behavior of heavy metals and the crucial phase of manganese oxides/hydroxides in natural and engineered environments.

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来源期刊
Journal of environmental sciences
Journal of environmental sciences Environmental Science (General)
CiteScore
12.80
自引率
0.00%
发文量
0
审稿时长
17 days
期刊介绍: Journal of Environmental Sciences is an international peer-reviewed journal established in 1989. It is sponsored by the Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, and it is jointly published by Elsevier and Science Press. It aims to foster interdisciplinary communication and promote understanding of significant environmental issues. The journal seeks to publish significant and novel research on the fate and behaviour of emerging contaminants, human impact on the environment, human exposure to environmental contaminants and their health effects, and environmental remediation and management. Original research articles, critical reviews, highlights, and perspectives of high quality are published both in print and online.
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