首页> 美国卫生研究院文献>Nanomaterials >The Novel Z-Scheme Ternary-Component Ag/AgI/α-MoO3 Catalyst with Excellent Visible-Light Photocatalytic Oxidative Desulfurization Performance for Model Fuel
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The Novel Z-Scheme Ternary-Component Ag/AgI/α-MoO3 Catalyst with Excellent Visible-Light Photocatalytic Oxidative Desulfurization Performance for Model Fuel

机译:Z型三元组分Ag / AgI /α-MoO3新型催化剂对模型燃料具有良好的可见光光催化氧化脱硫性能

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摘要

The novel ternary-component Ag/AgI/α-MoO3 (AAM) photocatalyst was successfully fabricated by a facile hydrothermal method combined with a charge-induced physical adsorption and photo-reduced deposition technique. X-ray diffraction, scanning/transmission electron microscope, X-ray photoelectron, UV-vis diffuse reflectance, photoluminescence and electrochemical impedance spectroscopy were employed to characterize the composition, morphology, light-harvesting properties and charge transfer character of the as-synthesized catalysts. The ternary-component AAM heterojunctions exhibited an excellent visible-light photocatalytic oxidative desulfurization activity, in which the AAM-35 (35 represents weight percent of AgI in AAM sample) possessed the highest photocatalytic activity of the conversion of 97.5% in 2 h. On the basis of band structure analysis, radical trapping experiments and electron spin resonance (ESR) spectra results, two different catalytic mechanisms were suggested to elucidate how the photogenerated electron-hole pairs can be effectively separated for the enhancement of photocatalytic performance for dual composites AM-35 and ternary composites AAM-35 during the photocatalytic oxidative desulfurization (PODS) of thiophene. This investigation demonstrates that Z-scheme Ag/AgI/α-MoO3 will be a promising candidate material for refractory sulfur aromatic pollutant’s removal in fossil fuel.
机译:通过一种简便的水热方法,结合电荷诱导的物理吸附和光还原沉积技术,成功地制备了新型三元Ag / AgI /α-MoO3(AAM)光催化剂。用X射线衍射,扫描/透射电子显微镜,X射线光电子,紫外可见漫反射,光致发光和电化学阻抗谱来表征所合成催化剂的组成,形态,聚光性能和电荷转移特性。 。三元组分AAM异质结表现出优异的可见光光催化氧化脱硫活性,其中AAM-35(35代表AAM样品中AgI的重量百分比)在2小时内具有最高的光催化活性,转化率为97.5%。在能带结构分析,自由基俘获实验和电子自旋共振(ESR)光谱结果的基础上,提出了两种不同的催化机理来阐明如何有效分离光生电子-空穴对以增强双复合材料AM的光催化性能。 -35和三元复合物AAM-35在噻吩的光催化氧化脱硫(PODS)中。这项研究表明Z方案Ag / AgI /α-MoO3将是一种有前途的候选材料,可用于去除化石燃料中的难处理的硫芳香族污染物。

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