用于有机氧化反应的二氧化锡催化剂中的缺陷工程学

Keivan Rahimi, Aditya Rawal, Yi Fen Zhu, Judy N. Hart, Emma C. Lovell, Jason Scott
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引用次数: 0

摘要

金属氧化物缺陷工程是改进高级氧化工艺的有效方法。在此,我们报告了调节氧化锡上存在的缺陷类型可以解构它们对有机物氧化的不同影响。氮退火产生了 E′中心和非桥接氧空穴中心(NBOHC)缺陷,而最佳氢化则引入了氧空位,从而显著提高了催化氧化性能。根据光谱分析,延长氢化时间会钝化 NBOHC,并形成新型缺陷,如被困在氧空位中的电子,与 NBOHC 相比,氧空位的催化活性较低。DFT 表明,氧空位降低了氧活化的能垒以及甲酸中 C-H 键的活化能垒,证实了缺陷浓度优化的样品催化活性增强的实验结果。目前的研究工作加深了人们对不同缺陷在增强有机物氧化过程中的作用的理解,有助于不断寻找用于氧化反应的高效材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Defect engineering in SnO2 catalysts for the organic oxidation reaction
Defect engineering in metal oxides is an effective approach for improving advanced oxidation processes. Herein, we report that regulating the defect types present on SnO enables deconvolution of their distinct effects on organic oxidation. Nitrogen annealing created E′ center and non-bridging oxygen hole center (NBOHC) defects, while optimum hydrogenation introduced oxygen vacancies, significantly enhancing catalytic oxidation performance. Based on spectroscopic analysis, extended hydrogenation times passivated NBOHCs and formed new types of defects, such as electrons trapped in oxygen vacancies, which are less catalytically active in comparison with NBOHCs. DFT indicated that oxygen vacancies lower the energy barrier for oxygen activation as well as activation of the C-H bonds in formic acid, corroborating the experimental results of enhanced catalytic activity in samples with optimized defect concentrations. The current work advances understanding of the roles different defects play in enhancing organic oxidation in the ongoing search for efficient materials for oxidation reactions.
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