首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Synthesis of Porous and Visible-Light Absorbing Bi2WO6/TiO2 Heterojunction Films with Improved Photoelectrochemical and Photocatalytic Performances
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Synthesis of Porous and Visible-Light Absorbing Bi2WO6/TiO2 Heterojunction Films with Improved Photoelectrochemical and Photocatalytic Performances

机译:具有改善的光电化学和光催化性能的多孔和可见光吸收性Bi2WO6 / TiO2异质结薄膜的合成

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摘要

This work reports the preparation of porous and visible-light absorbing Bi2WO6/TiO2 heterojunction films as a photoelectrode and their photoelectrochemical and photocatalytic performances. The Bi2WO6 underlayers with high surface roughness were prepared by a superhydrophilicity-assisted method. The Bi2WO6/TiO2 bilayer films showed high interface area between the Bi2WO6 and TiO2 layers. Significant enhancement in visible light photocurrent generation on the optimal Bi2WO6/TiO2 film was observed as compared with unmodified Bi2WO6 (a factor of 2) and unmodified TiO2 (a factor of 13) films. The optimal visible-light photocatalytic activity of the Bi2WO6/TiO2 film was 15.1 nm of stearic acid degraded, which was 6 and 4.6 times higher than that of unmodified Bi2WO6 and TiO2 films, respectively. The enhanced photoelectrochemical and photocatalytic performances of Bi2WO6/TiO2 films were attributed to theimproved charge separation efficiency derived from the suitable valence band interaction between the two semiconductors, as well as high interface area and porous structure of the heterojunction bilayer films. Charge separation between Bi2WO6 (underlayer) and TiO2 (overlayer) was verified by photoluminescence (PL) and current-voltage (I-V) characteristics studies.
机译:这项工作报告多孔和可见光吸收Bi2WO6 / TiO2异质结薄膜作为光电极的制备及其光电化学和光催化性能。通过超亲水性辅助方法制备了具有高表面粗糙度的Bi2WO6底层。 Bi2WO6 / TiO2双层膜在Bi2WO6和TiO2层之间显示出较高的界面面积。与未修饰的Bi2WO6(系数为2)和未修饰的TiO2(系数为13)薄膜相比,在最佳Bi2WO6 / TiO2薄膜上观察到的可见光光电流产生显着增强。 Bi2WO6 / TiO2薄膜的最佳可见光光催化活性为硬脂酸降解的15.1 nm,分别是未改性的Bi2WO6和TiO2薄膜的6和4.6倍。 Bi2WO6 / TiO2薄膜增强的光电化学和光催化性能归因于两种半导体之间合适的价带相互作用以及异质结双层薄膜的高界面面积和多孔结构,从而提高了电荷分离效率。通过光致发光(PL)和电流-电压(I-V)特性研究验证了Bi2WO6(下层)和TiO2(上层)之间的电荷分离。

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