Photo-reduction of bromate in drinking water by metallic Ag and reduced graphene oxide (RGO) jointly modified BiVO4 under visible light irradiation

石墨烯 光催化 光化学 氧化物 材料科学 光电流 介电谱 吸附 电子受体 溴酸盐 无机化学 化学 催化作用 电化学 纳米技术 电极 有机化学 光电子学 物理化学 溴化物 冶金
作者
Fei Chen,Qi Yang,Yu Zhong,Hongxue An,Jianwei Zhao,Ting Xie,Qiuxiang Xu,Xiaoming Li,Dongbo Wang,Guangming Zeng
出处
期刊:Water Research [Elsevier BV]
卷期号:101: 555-563 被引量:182
标识
DOI:10.1016/j.watres.2016.06.006
摘要

Bromate (BrO3−), an oxyhalide disinfection by-product (DBP) in drinking water, has been demonstrated to be carcinogenic and genotoxic. In the current work, metallic Ag and reduced graphene oxide (RGO) co-modified BiVO4 was successfully synthesized by a stepwise chemical method coupling with a photo-deposition process and applied in the photo-reduction of BrO3− under visible light irradiation. In this composite, metallic Ag acted as an electron donor or mediator and RGO enhanced the BrO3− adsorption onto the surface of catalysts as well as an electron acceptor to restrict the recombination of photo-generated electron-hole pairs. The [email protected]4@RGO composite exhibited greater photo-reduction BrO3− performance than pure BiVO4, [email protected]4 and [email protected]4 under identical experimental conditions: initial BrO3− concentration 150 μg/L, catalyst dosage 0.5 g/L, pH 7.0 and visible light (λ > 420 nm). The photoluminescence spectra (PL), electron-spin resonance (ESR), photocurrent density (PC) and electrochemical impedance spectroscopy (EIS) measurements indicated that the modified BiVO4 enhanced the photo-generated electrons and separated the electron-hole pairs. The photocatalytic reduction efficiency for BrO3− removal decreased with the addition of electron quencher K2S2O8, suggesting that electrons were the primary factor in this photo-reduction process. The declining photo-reduction efficiency of BrO3− in tap water should attribute to the consumption of photo-generated electrons by coexisting anions and the adsorption of dissolved organic matter (DOM) on graphene surface. The overall results indicate a promising application potential for photo-reduction in the DBPs removal from drinking water.
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