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首页> 外文期刊>ChemCatChem >Improved Photocatalytic Performance of the Ultra-small Ag Nanocrystallite-Decorated TiO2 Hollow Sphere Heterostructures
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Improved Photocatalytic Performance of the Ultra-small Ag Nanocrystallite-Decorated TiO2 Hollow Sphere Heterostructures

机译:提高超小型纳米晶体装饰TiO2中空球体异质结构的光催化性能

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摘要

The ultra-small Ag nanocrystallite-decorated TiO2 hollow sphere heterostructures were fabricated by using a two-step hydrothermal method. These heterostructures demonstrated an excellent photodegradation performance of rhodamine B. The photodegradation efficiency could reach up to 100% within 20min under simulated sunlight irradiation. XRD, field emission SEM, TEM, scanning TEM, high-resolution TEM coupled with energy-dispersive X-ray spectroscopy, UV/Vis absorption and photoluminescence spectroscopy, X-ray photoelectron spectroscopy, Mott-Schottky analysis, and hydroxyl radical measurements were used to correlate the structure, surface property, and energy band alignment of rhodamine B to its photocatalytic activity. In these metal-semiconductor heterostructures, the Ag nanocrystallites were highly crystalline and were distributed evenly on the surface of TiO2 hollow spheres with compact interfaces. They reduced the recombination rate of charge carriers and favoured the charge transfer across the interfaces. The increased surface adsorbed oxygen facilitated the generation of hydroxyl radicals, and the reduced surface defects increased the lifetime of charge carriers upon Ag loading. The Schottky barriers between Ag and illuminated TiO2, the upward shift of the Fermi level, and increased electron density due to Ag coupling contributed to the charge transfer and increase in quantum efficiency. These key factors involved in photocatalysis are of great importance to design functional and effective photocatalysts.
机译:通过使用两步水热法制造超小Ag纳米晶体装饰的TiO2中空球体异质结构。这些异质结构表明了罗丹明B的优异光降解性能。在模拟阳光照射下,光降解效率可在20min内达到高达100%。 XRD,场发射SEM,TEM,扫描TEM,高分辨率TEM与能量分散X射线光谱,UV / Vis吸收和光致发光光谱,X射线光电子体光谱,Mott-Schottky分析和羟基自由基测量将罗丹明B的结构,表面性能和能带对准与其光催化活性相关联。在这些金属半导体异质结构中,Ag纳米晶体高度结晶,并且在TiO 2中空球的表面上均匀地分布,具有紧凑的界面。它们降低了电荷载体的重组速率,并赞成界面的电荷转移。增加表面吸附的氧气促进了羟基自由基的产生,并且降低的表面缺陷在Ag加载时增加了电荷载体的寿命。 Ag和照明TiO2之间的肖特基屏障,费米水平的向上偏移,并且由于Ag耦合而增加的电子密度导致电荷转移和量子效率的增加。参与光催化的这些关键因素非常重要地设计功能性和有效的光催化剂。

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