Literature DB >> 12666928

Catalyzed oxidation of arsenic(III) by hydrogen peroxide on the surface of ferrihydrite: an in situ ATR FTIR study.

Andreas Voegelin1, Stephan J Hug.   

Abstract

Knowledge of arsenic redox kinetics is crucial for understanding the impact and fate of As in the environment and for optimizing As removal from drinking water. Rapid oxidation of As(III) adsorbed to ferrihydrite (FH) in the presence of hydrogen peroxide (H2O2) might be expected for two reasons. First, the adsorbed As(III) is assumed to be oxidized more readily than the undissociated species in solution. Second, catalyzed decomposition of H2O2 on the FH surface might also lead to As(III) oxidation. Attenuated total reflection-Fourier transform infrared (ATR-FTIR) spectroscopy was used to monitor the oxidation of adsorbed As(III) on the FH surface in situ. No As(III) oxidation within minutes to hours was observed prior to H2O2 addition. Initial pseudo-first-order oxidation rate coefficients for adsorbed As(III), determined at H2O2 concentrations between 8.4 microM and 8.4 mM and pH values from 4 to 8, increased with the H2O2 concentration according to the equation log k(ox) (min(-1)) = 0.17 + 0.50 log [H2O] (mol/L), n = 21, r2 = 0.87. Only a weak pH dependence of log k(ox) was observed (approximately 0.04 logarithm unit increase per pH unit). ATR-FTIR experiments with As(III) adsorbed onto amorphous aluminum hydroxide showed that Fe was necessary to induce As(III) oxidation by catalytic H2O2 decomposition. Supplementary As(III) oxidation experiments in FH suspensions qualitatively confirmed the findings from the in situ ATR-FTIR experiments. Our results indicate that the catalyzed oxidation of As(III) by H2O2 on the surface of iron (hydr)oxides might be a relevant reaction pathway in environmental systems such as surface waters, as well as in engineered systems for As removal from water.

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Year:  2003        PMID: 12666928     DOI: 10.1021/es025845k

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  7 in total

1.  The effect of arsenic chemical form and mixing regime on arsenic mass transfer from soil to magnetite.

Authors:  Kyung Yang; Byung-Chul Kim; Kyoungphile Nam; Yongju Choi
Journal:  Environ Sci Pollut Res Int       Date:  2017-02-11       Impact factor: 4.223

2.  Photooxidation of arsenite by natural goethite in suspended solution.

Authors:  Yajie Wang; Jing Xu; Yan Zhao; Lin Zhang; Mei Xiao; Feng Wu
Journal:  Environ Sci Pollut Res Int       Date:  2012-07-18       Impact factor: 4.223

3.  Effect of silicic acid on arsenate and arsenite retention mechanisms on 6-L ferrihydrite: A spectroscopic and batch adsorption approach.

Authors:  Xiaodong Gao; Robert A Root; James Farrell; Wendell Ela; Jon Chorover
Journal:  Appl Geochem       Date:  2013-11       Impact factor: 3.524

4.  Enhanced refractory organics removal by sponge iron-coupled microbe technology: performance and underlying mechanism analysis.

Authors:  Jie Li; Yae Wang; Huina Xie; Wei Zhao; Lihong Zhang; Jing Li
Journal:  Bioprocess Biosyst Eng       Date:  2021-10-06       Impact factor: 3.210

5.  A silica-supported iron oxide catalyst capable of activating hydrogen peroxide at neutral pH values.

Authors:  Anh Le-Tuan Pham; Changha Lee; Fiona M Doyle; David L Sedlak
Journal:  Environ Sci Technol       Date:  2009-12-01       Impact factor: 9.028

6.  Persistent arsenate-iron(iii) oxyhydroxide-organic matter nanoaggregates observed in coal.

Authors:  Yinfeng Zhang; Shehong Li; Jing Sun; Benjamin C Bostick; Yan Zheng
Journal:  Environ Sci Nano       Date:  2021-08-13

7.  Oxidation of Arsenite by Epoxy Group on Reduced Graphene Oxide/Metal Oxide Composite Materials.

Authors:  Qiantao Shi; Li Yan; Chuanyong Jing
Journal:  Adv Sci (Weinh)       Date:  2020-09-23       Impact factor: 16.806

  7 in total

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