TiO2 membranes for concurrent photocatalytic organic degradation and corrosion protection

R. Liang, M. Hatat-Fraile, H. He, M. Arlos, M. Servos, Y. Norman Zhou
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引用次数: 1

Abstract

Organic contaminants and corrosion in water treatment effluents are a current global problem and the development of effective methods to facilitate the removal of organic contaminants and corrosion control strategies are required to mitigate this problem. TiO2 nanomaterials that are exposed to UV light can generate electron-hole pairs, which undergo redox reactions to produce hydroxyl radicals from adsorbed molecular oxygen. They hydroxyl radicals are able to oxidize organic contaminants in water. This same process can be used in conjunction to protect metals from corrosion via cathodic polarization. In this work, TiO2 nanomaterials were synthesized and electrophoretically deposited on conductive substrates to serve as films or membranes. An illuminated TiO2 film on a conductive surface served as the photoanode and assisted in the cathodic protection of stainless steel (SS304) and the degradation of organic pollutants, in this case glucose. This proof-of-concept relied on photoelectrochemical experiments conducted using a potentiostat and a xenon lamp illumination source. The open-circuit potential changes that determine whether a metal is protected from corrosion under illumination was observed; and the electrical characteristics of the TiO2 film or membrane under dark and arc lamp illumination conditions were also analyzed. Furthermore, the effect of organic contaminants on the photocathodic protection mechanism and the oxidation of glucose during this process were explored.
用于光催化有机降解和腐蚀防护的TiO2膜
水处理出水中的有机污染物和腐蚀是当前的一个全球性问题,需要开发有效的方法来促进去除有机污染物和腐蚀控制战略,以减轻这一问题。在紫外光照射下,TiO2纳米材料可产生电子-空穴对,电子-空穴对吸附的分子氧发生氧化还原反应生成羟基自由基。羟基自由基能够氧化水中的有机污染物。同样的工艺也可以用于保护金属免受阴极极化的腐蚀。在这项工作中,TiO2纳米材料被合成并电泳沉积在导电衬底上作为薄膜或膜。在导电表面上放置一层发光的TiO2薄膜作为光阳极,有助于不锈钢(SS304)的阴极保护和有机污染物(在本例中为葡萄糖)的降解。这种概念验证依赖于使用恒电位器和氙灯照明源进行的光电化学实验。观察开路电位变化,确定金属在光照下是否被保护免受腐蚀;并分析了TiO2薄膜或膜在暗光和弧光灯照明条件下的电学特性。此外,还探讨了有机污染物对光电阴极保护机制的影响以及该过程中葡萄糖氧化的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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