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Exciton Dissociation on Double Z-scheme Heterojunction for Photocatalytic Application

机译:在光催化应用的双Z-Scheme异质结上的激子解离

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Constructing heterojunction is one of the promising approaches to obtain desired photocatalysts with enhanced photocatalytic activity. Herein, we have fabricated a Fe2O3- PrFeO3/g-C3N4 ternary heterostructure by a simple wet chemical method to improve the photocatalytic activity of pristine g- C3N4. The as-prepared catalyst has shown 7.8 times higher photocatalytic degradation of dye acid violet 7 and generated 379.29 μmolL~(-1) h~(-1) of ammonia under visible-light irradiation. The ternary heterojunction was found to form a double Zscheme heterojunction that facilitates interfacial electron transfer, promotes the separation of photogenerated charge carriers, and also enhances light harvesting property. The enhanced photocatalytic performance of the catalyst is ascribed to the formation of double Z-scheme heterojunction, which offers low charge transfer resistance thereby lowering the recombination of photoexcitons and increasing the lifetime of photoexcitons.
机译:构造异晶是获得具有增强光催化活性的所需光催化剂的有前途方法之一。 本文中,我们通过一种简单的湿化学方法制造了Fe2O3-PRFEO3/G-C3N4三元异质结构,以改善原始G-C3N4的光催化活性。 制备准备的催化剂已显示出染料酸紫7的光催化降解的7.8倍,并在可见光照射下产生了379.29μmoll〜(-1)H〜(-1)H〜(-1)。 发现三元杂结型形成双Zscheme杂结,可促进界面电子转移,促进光生荷载载体的分离,并增强光收获性能。 催化剂的增强光催化性能归因于双Z-Scheme杂结的形成,后者具有低电荷转移电阻,从而降低了光脱糖的重组并增加了光脱糖的寿命。

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