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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >In situ synthesis of TiO2/SnOx-Au ternary heterostructures effectively promoting visible-light photocatalysis
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In situ synthesis of TiO2/SnOx-Au ternary heterostructures effectively promoting visible-light photocatalysis

机译:TiO2 / SnOx-Au三元异质结构的原位合成有效促进可见光催化

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摘要

TiO2/SnOx-Au ternary heterostructures were successfully fabricated via a simple in situ reduction of AuCl4- on TiO2 surfaces pre-modified with Sn2+. The samples were characterized by XRD, TEM, XPS, N-2 physical absorption and UV-vis diffuse reflectance spectra. Photocatalytic activity toward degradation of methylene blue (MB) aqueous solution under visible light irradiation was investigated. The results suggested that the highly dispersive and ultrafine Au nanoparticles (NPs) covered with SnOx were deposited onto the surface of TiO2. The heterostructures significantly enhanced the photocatalytic activity compared with the traditional TiO2/Au sample prepared by the impregnation method and also enhanced the activity more than the binary TiO2/SnOx sample. Moreover, the size of the Au NPs could be well controlled by simply tuning the dosage of HAuCl4, and the optimized catalytic activity of the ternary heterostructures was obtained when the dosage of Au was 1% and the Au particle size was similar to 2.65 nm. The enhancement of photocatalytic performance could be attributed to the surface plasmon resonance effect of the Au NPs and the electron-sink function of the SnOx, which improve the optical absorption properties as well as photoinduced charge carrier separation, synergistically facilitating the photocatalysis.
机译:TiO2 / SnOx-Au三元异质结构是通过在Sn2 +预改性的TiO2表面上简单地原位还原AuCl4-来成功制备的。通过XRD,TEM,XPS,N-2物理吸收和紫外可见漫反射光谱对样品进行表征。研究了在可见光照射下对亚甲基蓝(MB)水溶液降解的光催化活性。结果表明,被SnOx覆盖的高分散性和超细金纳米颗粒(NPs)沉积在TiO2的表面上。与通过浸渍法制备的传统TiO2 / Au样品相比,异质结构显着增强了光催化活性,并且比二元TiO2 / SnOx样品具有更高的活性。而且,通过简单地调节HAuCl 4的剂量就可以很好地控制Au NP的尺寸,并且当Au的用量为1%且Au粒径接近2.65 nm时,可以获得最佳的三元异质结构催化活性。光催化性能的提高可归因于金纳米粒子的表面等离子体共振效应和SnOx的电子吸收功能,从而改善了光吸收性能以及光致电荷载流子的分离,从而协同促进了光催化作用。

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