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Electrosynthesized iridium oxide-polymer nanocomposite thin films for electrocatalytic oxidation of arsenic(III)

机译:电合成氧化铱-聚合物纳米复合薄膜用于砷的电催化氧化(III)

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摘要

Nanocomposite materials have been synthesized by electrodeposition of iridium oxide nanoparticles into poly(pyrrole-alkylammonium) films coated by oxidative electropolymerization of a pyrrole-alkylammonium monomer onto carbon electrodes, and characterized by electrochemistry in aqueous electrolytes and by transmission electron microscopy. Iridium oxide-based nanocomposite electrode materials appeared efficient electrocatalysts for the oxidation of arsenic(III) into arsenic(V) species at low potentials, i.e. in the 0.3-0.7 V vs. Ag/AgCl range, and over a large pH range. Bulk electrocatalytic oxidation of arsenite solutions could be performed in the presence of a water-soluble poly(quaternary ammonium) salt acting as the supporting electrolyte and also as an As(V) complexing agent, which allowed the combination of electrocatalytic oxidation of As(III) with the liquid phase polymer-assisted retention (LPR) technique to efficiently remove arsenic from polluted solutions.
机译:通过将氧化铱纳米粒子电沉积到通过吡咯-烷基铵单体在碳电极上的氧化电聚合涂覆的聚(吡咯-烷基铵)薄膜中来合成纳米复合材料,并通过在水性电解质中进行电化学和通过透射电子显微镜表征。基于氧化铱的纳米复合电极材料在低电势下(即在0.3-0.7 V vs.Ag/AgCl范围内且在较大pH范围内)似乎是将砷(III)氧化为砷(V)物种的有效电催化剂。砷溶液的本体电催化氧化反应可在水溶性聚季铵盐作为辅助电解质和As(V)络合剂的情况下进行,从而可以将As(III)进行电催化氧化。 )的液相聚合物辅助保留(LPR)技术可有效去除污染溶液中的砷。

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