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首页> 外文期刊>RSC Advances >Construction of AgCl/Ag/BiOCl with a concave-rhombicuboctahedron core–shell hierarchitecture and enhanced photocatalytic activity
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Construction of AgCl/Ag/BiOCl with a concave-rhombicuboctahedron core–shell hierarchitecture and enhanced photocatalytic activity

机译:AgCl / Ag / BioCl的构建,凹形菱形核核心壳壳壳和增强的光催化活性

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摘要

AgCl/Ag/BiOCl with a concave-rhombicuboctahedron hierarchitecture with excellent photocatalytic activity is obtained via a facile vapor diffusion strategy at room temperature without template or any additives. The AgCl/Ag/BiOCl shows considerably higher photocatalytic activity than pure Ag/AgCl and BiOCl under visible light irradiation, in which the main active species are holes and Cl atoms. The possible charge transfer mechanism for the enhanced visible light photocatalytic activity is proposed. The slow reaction rate of the vapor diffusion process could produce the hierarchical structure AgCl/Ag/BiOCl which consists of cubic AgCl as the core and BiOCl nanosheets on the surface. The heterojunction between AgCl and BiOCl could effectively promote the interfacial charge transfer and decrease the combination of photoinduced electrons and holes, thus produce a large number of holes and enhance photocatalytic activity. Furthermore, strong adsorption activity of BiOCl nanosheets on the surface of AgCl/Ag/BiOCl also promotes the photocatalytic activity. Finally, low consumption of Ag and higher photocatalytic efficiency are both achieved in the AgCl/Ag/BiOCl heterojunction photocatalyst. This novel photocatalyst demonstrates potential application for organic pollutant elimination and proposes insight for designing highly efficient heterojunction photocatalysts.
机译:具有优异的光催化活性的AgCl / Ag / BioCl具有优异的光催化活性,通过在没有模板或任何添加剂的室温下通过容纳蒸汽扩散策略获得。 AgCl / Ag / BioCl在可见光照射下显示比纯Ag / AgCl和BioCl相当高的光催化活性,其中主要活性物质是孔和Cl原子。提出了增强可见光光催化活性的可能电荷转移机制。蒸汽扩散过程的缓慢反应速率可以产生分层结构AGCl / Ag / BioCl,其由立方体AgCl组成,作为表面上的核心和BioCl纳米晶片。 AgCl和BioCl之间的异质结可以有效地促进界面电荷转移并降低光致电子和孔的组合,从而产生大量孔并增强光催化活性。此外,BioCl纳米蛋白酶在AgCl / Ag / BioCl表面上的强吸附活性也促进了光催化活性。最后,在AgCl / Ag / BioCl异质结光催化剂中均达到Ag和更高的光催化效率的低消耗。这种新型光催化剂表明了有机污染物消除的潜在应用,并提出了设计高效异质结光催化剂的见解。

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