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Achievements and Trends in Photoelectrocatalysis: from Environmental to Energy Applications

机译:光电催化的成就和趋势:从环境到能源的应用

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The great versatility of semiconductor materials and the possibility of generation of electrons, holes, hydroxyl radicals, and/or superoxide radicals have increased the applicability of photoelectrocatalysis dramatically in the contemporary world. Photoelectrocatalysis takes advantage of the heterogeneous photocatalytic process by applying a biased potential on a photoelectrode in which the catalyst is supported. This configuration allows more effectiveness of the separation of photogenerated charges due to light irradiation with energy being higher compared to that of the band gap energy of the semiconductor, which thereby leads to an increase in the lifetime of the electron-hole pairs. This work presents a compiled and critical review of photoelectrocatalysis, trends and future prospects of the technique applied in environmental protection studies, hydrogen generation, and water disinfection. Special attention will be focused on the applications of TiO2 and the production of nanometric morphologies with a great improvement in the photocatalyst properties useful for the degradation of organic pollutants, the reduction of inorganic contaminants, the conversion of CO2, microorganism inactivation, and water splitting for hydrogen generation.
机译:半导体材料的多功能性以及产生电子,空穴,羟基自由基和/或超氧化物自由基的可能性极大地提高了光电催化在当代世界中的适用性。通过在负载有催化剂的光电极上施加偏置电势,光电催化利用了非均相光催化工艺的优势。与半导体的带隙能量相比,该结构使得由于能量更高的光照射而导致的光生电荷的分离效率更高,从而导致电子-空穴对的寿命增加。这项工作对光电催化,环保技术,制氢和水消毒中应用的技术的趋势和未来前景进行了汇编和批判性的综述。特别关注的是TiO2的应用和纳米形态的生产,其光催化剂性能将大大改善,可用于降解有机污染物,减少无机污染物,减少CO2的转化,微生物的灭活和水的分解。制氢。

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