2020 Volume 39 Issue 8
Article Contents

HOU Song, ZENG Yue, SHUI Wei, CHEN Qiuyan. Environmental chemical behaviors of platinum group elements in aquatic environment[J]. Environmental Chemistry, 2020, (8): 2055-2064. doi: 10.7524/j.issn.0254-6108.2019053102
Citation: HOU Song, ZENG Yue, SHUI Wei, CHEN Qiuyan. Environmental chemical behaviors of platinum group elements in aquatic environment[J]. Environmental Chemistry, 2020, (8): 2055-2064. doi: 10.7524/j.issn.0254-6108.2019053102

Environmental chemical behaviors of platinum group elements in aquatic environment

  • Corresponding author: ZENG Yue, yzeng@fzu.edu.cn
  • Received Date: 31/05/2019
    Fund Project: Supported by the Natural Science Foundation of Fujian Province (2018J01745, 2013J01045).
  • The concentrations of platinum group elements (PGE) in aquatic environment have been increasing due to human activity. It is generally assumed that anthropogenic PGE behaves in inert manner and does not pose a hazard to the environment. However, PGE might easily be mobilized and transformed into more toxic forms, enhanced their bioavailability in the aquatic environment. Based on 79 literatures, this paper summarized the research about the PGE in aquatic environment, outlined the environmental behavior of PGE, introduced the source distribution and changes of flux into the sea of PGE, discussed the toxicological response of aquatic organisms, and analysed the Speciation and influence factors of PGE. The purpose of this review was to attract more attention to the effect of PGE. In addition, in view of the existing research results and limitations, the future research directions of PGE were also outlined.
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Environmental chemical behaviors of platinum group elements in aquatic environment

Fund Project: Supported by the Natural Science Foundation of Fujian Province (2018J01745, 2013J01045).

Abstract: The concentrations of platinum group elements (PGE) in aquatic environment have been increasing due to human activity. It is generally assumed that anthropogenic PGE behaves in inert manner and does not pose a hazard to the environment. However, PGE might easily be mobilized and transformed into more toxic forms, enhanced their bioavailability in the aquatic environment. Based on 79 literatures, this paper summarized the research about the PGE in aquatic environment, outlined the environmental behavior of PGE, introduced the source distribution and changes of flux into the sea of PGE, discussed the toxicological response of aquatic organisms, and analysed the Speciation and influence factors of PGE. The purpose of this review was to attract more attention to the effect of PGE. In addition, in view of the existing research results and limitations, the future research directions of PGE were also outlined.

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