首页|Boosting electrochemical oxidation of As(Ⅲ)on Fe-doped RuO2/PEDOT/SnO2 nanocomposite anode:Fabrication,performance and mechanism

Boosting electrochemical oxidation of As(Ⅲ)on Fe-doped RuO2/PEDOT/SnO2 nanocomposite anode:Fabrication,performance and mechanism

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Design of electrode materials for stable and efficient electrocatalytic oxidation of As(Ⅲ)in arsenic-contaminated groundwater poses a great challenge due to the rapid deactivation of catalysts resulting from the high oxygen evolution potential(OEP)and considerable barrier to generating reactive oxygen species(ROS).Herein,an innovative TNAs/SnO2/PEDOT/Fe(Ⅲ)-RuO2 multilayer electrode was synthesized by utilizing a PEDOT-coated SnO2 interlayer as a supportive framework to combine Fe-doped amorphous RuO2 catalytic layer with TiO2 nanotube array substrate.Such electrode exhibited high activity and sta-bility for the oxidation of As(Ⅲ)to As(V)due to the large surface area provided by the TiO2 nanotube arrays and the SnO2/PEDOT interlayer for facilitating the growth of the catalytic layer.The electrochem-ically active surface area of the electrode reached as high as 31.7 mF/cm2.Impressively,the doping of Fe into RuO2 layer led to a remarkable increase in the OEP value to 3.12 V,which boosted the indirect oxidation process mediated by ROS at a lower potential to achieve the As(Ⅲ)oxidation ratio of 98.5%.DFT calculations revealed that the Fe-doped amorphous RuO2 weakened the adsorption strength of·OH and.SO4-intermediates and lowered the energy barrier for generating ROS.Combined with ESR results,the formation of·OH and·SC4-with strong oxidizing properties was fully verified,providing further evi-dence for the involvement of ROS as the main mediator of the oxidation mechanism of As(Ⅲ).This work may provide valuable perspectives into the design of catalytic layer structures and heteroatom doping modifications for composite-coated electrodes.

ArseniteElectrocatalytic oxidationIron-doped ruthenium oxideAnodeReactive oxygen species

Xinyu Miao、Jiao Shen、Wenlan Ji、Tian C.Zhang、Ying Liang、Shaojun Yuan

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Low-carbon Technology & Chemical Reaction Engineering Lab,College of Chemical Engineering,Sichuan University,Chengdu 610065,China

College of Architecture and Environmental Engineering,Sichuan University,Chengdu 610065,China

Civil & Environmental Engineering Department,University of Nebraska-Lincoln,Omaha,NE 68182-0178,United States of America

国家自然科学基金

21978182

2024

材料科学技术(英文版)
中国金属学会 中国材料研究学会 中国科学院金属研究所

材料科学技术(英文版)

CSTPCD
影响因子:0.657
ISSN:1005-0302
年,卷(期):2024.180(13)
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