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Enhancement of photocatalytic performance with the use of noble-metal-decorated TiO 2 nanocrystals as highly active catalysts for aerobic oxidation under visible-light irradiation

光催化 材料科学 贵金属 催化作用 可见光谱 铂金 光化学 苯甲醇 X射线光电子能谱 漫反射红外傅里叶变换 钯 铂纳米粒子 纳米颗粒 化学工程 纳米技术 金属 化学 光电子学 有机化学 冶金 工程类
作者
Yu Chen,Yannan Wang,Weizun Li,Qian Yang,Qidong Hou,Lianghuan Wei,Le Liu,Fang Huang,Meiting Ju
出处
期刊:Applied Catalysis B-environmental [Elsevier BV]
卷期号:210: 352-367 被引量:170
标识
DOI:10.1016/j.apcatb.2017.03.077
摘要

The use of noble metals loaded on semiconductor supports, through the absorption of visible light by metal nanoparticles, has opened new avenues for the improvement of catalytic performance under light irradiation. In this study, a series of different coinage metals such as gold, silver, platinum, and palladium loaded on TiO2 were prepared by photo-deposition and characterized by transmission electron microscopy, X-ray diffraction, Brunauer–Emmett–Teller analysis, UV–vis diffuse reflectance spectroscopy, photoluminescence emission, and X-ray photoelectron spectroscopy. The photocatalytic activity of M–TiO2 (M = Au, Ag, Pt, and Pd) samples was evaluated by the selective oxidation of benzyl alcohol under visible-light irradiation. In addition, the relationship between the light intensity, light wavelength, temperature of the reaction, and photocatalytic efficiency was investigated; the photocatalytic efficiency increased directly by increasing the light intensity or reaction temperature or by adjusting the irradiation wavelength in the most appropriate range. Particularly, Pt2–TiO2, with a Pt nanoparticle size ∼2 nm, created an Schottky barrier, so as to promote the electron transfer from platinum to titanium, which in turn promotes the aerobic oxidation of benzyl alcohol with an apparent quantum yield of 5.58% (at 400 nm). The mechanism of the oxidation process of benzyl alcohol over Pt2–TiO2 is also presented. In addition, platinum and palladium nanoparticles exhibited an even more profound improvement in catalytic performance at a high operating temperature (80 °C); these catalysts can be used as photo-thermocatalyst, which can more efficiently drive chemical conversion by coupling light and heat energy sources.

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