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酸性水溶液中铁(III)-亚砷酸盐络合物的光化学转化

Photochemical transformation of an iron(III)-arsenite complex in acidic aqueous solution.

作者信息

Pozdnyakov Ivan P, Ding Wei, Xu Jing, Chen Long, Wu Feng, Grivin Vjacheslav P, Plyusnin Victor F

机构信息

Voevodsky Institute of Chemical Kinetics and Combustion, Institutskaya str. 3, 630090 Novosibirsk, Russian Federation.

出版信息

Photochem Photobiol Sci. 2016 Mar;15(3):431-9. doi: 10.1039/c5pp00240k. Epub 2016 Feb 24.

Abstract

Surface complexation between arsenious acid anions (As(III)) and ferric (hydr)oxides in water is important for the transformation and transfer of inorganic arsenic species. The mechanisms of formation and the photochemistry of dissolved Fe(III)-As(III) complexes in acidic aqueous solution are still unclear. Here, the photooxidation of As(III) in the presence of Fe(III) ions in acidic media has been investigated by laser flash and steady-state photolysis. At low arsenite concentrations (<1 mM), As(III) is oxidized by the ˙OH radical generated by photolysis of the FeOH(2+) complex. At higher arsenite concentrations (>10 mM), photoactive Fe(III)-As(III) complexes are formed (ϕ≈ 0.012). At all arsenite concentrations, a white FeAsO4 colloid is formed during As(III) photolysis in the presence of Fe(III) ions. Solid Fe(III)-As(III) complexes have been prepared and characterized, and the photochemical transformation of As(III) into As(V) in solid Fe(III)-As(III) complexes has been confirmed. These findings are important for a better understanding of the evolution of As(III) species under environmental conditions and should provide guidance for detoxification of As(III)-polluted water systems.

摘要

亚砷酸根阴离子(As(III))与水中的铁(氢)氧化物之间的表面络合作用对于无机砷物种的转化和迁移非常重要。酸性水溶液中溶解的Fe(III)-As(III)络合物的形成机制和光化学性质仍不清楚。在此,通过激光闪光和稳态光解研究了酸性介质中Fe(III)离子存在下As(III)的光氧化作用。在低亚砷酸盐浓度(<1 mM)下,As(III)被FeOH(2+)络合物光解产生的˙OH自由基氧化。在较高亚砷酸盐浓度(>10 mM)下,形成了光活性Fe(III)-As(III)络合物(ϕ≈0.012)。在所有亚砷酸盐浓度下,在Fe(III)离子存在下As(III)光解过程中都会形成白色的FeAsO4胶体。已经制备并表征了固体Fe(III)-As(III)络合物,并证实了固体Fe(III)-As(III)络合物中As(III)向As(V)的光化学转化。这些发现对于更好地理解环境条件下As(III)物种的演变非常重要,并且应该为As(III)污染水系统的解毒提供指导。

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