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水悬浮液中TiO₂光催化As(II)氧化:反应动力学及吸附作用

TiO2-photocatalyzed As(II) oxidation in aqueous suspensions: reaction kinetics and effects of adsorption.

作者信息

Ferguson Megan A, Hoffmann Michael R, Hering Janet G

机构信息

Department of Environmental Science and Engineering, California Institute of Technology, Pasadena, California 91125, USA.

出版信息

Environ Sci Technol. 2005 Mar 15;39(6):1880-6. doi: 10.1021/es048795n.

Abstract

Oxidation of arsenite, As(III), to arsenate, As(V), is required for the efficient removal of arsenic by many water treatment technologies. The photocatalyzed oxidation of As(III) on titanium dioxide, TiO2, offers an environmentally benign method for this unit operation. In this study, we explore the efficacy and mechanism of TiO2-photocatalyzed As(III) oxidation at circumneutral pH and over a range of As(III) concentrations approaching those typically encountered in water treatment systems. We focus on the effect of As adsorption on observed rates of photooxidation. Adsorption (in the dark) of both As(III) and As(V) on Degussa P25 TiO2 was examined at pH 6.3 over a range in dissolved arsenic concentrations, [As]diss, of 0.10-89 microM and 0.2 or 0.05 g L(-1) TiO2 for As(III) and As(V), respectively. Adsorption isotherms generally followed the Langmuir-Hinshelwood model with As(III) exhibiting an adsorption maxima of 32 micromol g(-1). As(V) adsorption did not reach a plateau under the experimental conditions examined; the maximum adsorbed concentration observed was 130 micromol g(-1). The extent of As(III) and As(V) adsorption observed at the beginning and end of the kinetic studies was consistent with that observed in the adsorption isotherms. Kinetic studies were performed in batch systems at pH 6.3 with 0.8-42 microM As(III) and 0.05 g L(-1) TiO2; complete oxidation of As(III) was observed within 10-60 min of irradiation at 365 nm. The observed effect of As(III) concentration on reaction kinetics was consistent with surface saturation at higher concentrations. Addition of phosphate at 0.5-10 microM had little effect on either As(III) sorption or its photooxidation rate but did inhibit adsorption of the product As(V). The selective use of hydroxyl radical quenchers and superoxide dismutase demonstrated that superoxide, O2-, plays a major role in the oxidation of As(III) to As(V).

摘要

许多水处理技术要有效去除砷,需将亚砷酸盐(As(III))氧化为砷酸盐(As(V))。二氧化钛(TiO₂)光催化氧化As(III)为该单元操作提供了一种环境友好型方法。在本研究中,我们探究了在接近中性的pH值以及一系列接近水处理系统中常见浓度的As(III)条件下,TiO₂光催化氧化As(III)的效果和机制。我们重点研究了As吸附对观察到的光氧化速率的影响。在pH 6.3下,分别在0.10 - 89微摩尔/升的溶解砷浓度([As]diss)范围内,以及分别使用0.2克/升或0.05克/升TiO₂的条件下,考察了As(III)和As(V)在德固赛P25 TiO₂上的吸附(在黑暗中)情况。吸附等温线通常遵循朗缪尔 - 欣谢尔伍德模型,As(III)的吸附最大值为32微摩尔/克。在所考察的实验条件下,As(V)的吸附未达到平台期;观察到的最大吸附浓度为130微摩尔/克。动力学研究开始和结束时观察到的As(III)和As(V)吸附程度与吸附等温线中观察到的一致。在pH 6.3的间歇系统中,使用0.05克/升TiO₂和0.8 - 42微摩尔/升的As(III)进行动力学研究;在365纳米光照10 - 60分钟内观察到As(III)完全氧化。观察到的As(III)浓度对反应动力学的影响与较高浓度下的表面饱和情况一致。添加0.5 - 10微摩尔的磷酸盐对As(III)吸附及其光氧化速率几乎没有影响,但确实抑制了产物As(V)的吸附。选择性使用羟基自由基猝灭剂和超氧化物歧化酶表明,超氧阴离子(O₂⁻)在As(III)氧化为As(V)过程中起主要作用。

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