首页> 外文期刊>Applied Surface Science >Facet-engineered surface and interface design of WO_3/Bi_2WO_6 photocatalyst with direct Z-scheme heterojunction for efficient salicylic acid removal
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Facet-engineered surface and interface design of WO_3/Bi_2WO_6 photocatalyst with direct Z-scheme heterojunction for efficient salicylic acid removal

机译:直接Z方案异质结的WO_3 / Bi_2WO_6光催化剂的多面设计表面和界面设计,可有效去除水杨酸

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WO3 ((0 0 1)) and WO3 ((0 0 1)&(1 1 0)) were initially grown on the surface of Bi2WO6 ((0 1 0)) nanoplates via simple hydrothermal route, respectively. Compared to WO3 ((0 0 1))/Bi2WO6, the developed WO3 ((0 0 1)&(1 1 0))/Bi2WO6 was endowed with the stronger interfacial interaction property. Moreover, the developed composite could present a broad visible light response at an absorption edge of 440 nm. Not only that, the optimized interfacial carriers were newly achieved, leading to the enhanced separation and transfer of photogenerated electron-hole pairs. The resulting WO3 ((0 0 1)&(1 1 0))/Bi2WO6 was implemented to salicylic acid removal (up to 74.5%) under visible light irradiation, demonstrating a kinetics of about 2.4 times faster than that of WO3 ((0 0 1))/Bi2WO6. The significantly improved photocatalysis of developed composite was attributed to the conversion from traditional heterojunction to Z-scheme heterojunction, thus, promoting the oxidation ability of photogenerated holes so as to engender abundant center dot OH. Ultimately, based on the analysis of energy band structures, the migration pathways of photogenerated carriers in composites was explained. Noticeably, it may open a new door towards the Z-scheme strategy of compound photocatalyst without any electronic mediators via controllable facet exposure engineering for highly photocatalysis.
机译:WO3((0 0 1))和WO3((0 0 1)&(1 1 0))最初分别通过简单的水热途径生长在Bi2WO6((0 1 0))纳米板上。与WO3((0 0 1))/ Bi2WO6相比,已开发的WO3((0 0 1)&(1 1 0))/ Bi2WO6具有更强的界面相互作用特性。此外,开发的复合材料可以在440 nm的吸收边缘处呈现宽广的可见光响应。不仅如此,新获得了优化的界面载流子,从而增强了光生电子-空穴对的分离和转移。所得的WO3((0 0 1)&(1 1 0))/ Bi2WO6在可见光照射下用于水杨酸的去除(高达74.5%),其动力学比WO3快约2.4倍((0 0 1))/ Bi2WO6。显影后复合材料的光催化性能显着改善,这归因于从传统异质结到Z型异质结的转化,从而促进了光生空穴的氧化能力,从而产生了丰富的中心点OH。最后,基于能带结构的分析,解释了光生载流子在复合材料中的迁移途径。值得注意的是,它可以通过可控刻面曝光工程实现高度光催化,从而为没有任何电子介体的复合光催化剂的Z方案策略打开新的大门。

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