钌掺杂mof模板型CeMnOx催化剂用于氯苯的高效氧化:活性氧和酸位的协同效应

IF 2.5 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Zhewen Yang, Ke Yin, Lu Cheng, Xiaodong Chen and Bichun Huang
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引用次数: 0

摘要

本研究采用金属有机骨架(MOF)模板法合成了CeMnOx。随后采用Ru掺杂制备了一系列RuCeMnOx催化剂。钌含量为0.8 wt%的RuCeMnOx催化剂(RuCeMnOx-0.8 wt%)对氯苯氧化表现出最佳的催化活性,在268°C时达到99%的氯苯转化率,在300°C时达到97%的CO2选择性(反应条件:500 ppm氯苯,30 000 h - 1气体小时空速,10 vol% O2)。与CeMnOx催化剂相比,90%氯苯转化所需的温度降低了80℃。采用XRD、Raman、XPS、O2-TPD等分析方法研究了RuCeMnOx-0.8 wt%催化剂的氧化活性与其理化性质的关系。结果表明,Ru、Mn和Ce之间的电子相互作用和协同作用促进了氧空位的形成,提高了氧的迁移能力,从而提高了催化剂中活性氧的浓度。值得注意的是,Py-IR和GC-MS分析表明,这些协同效应同时增加了表面酸位点,提高了HCl的选择性,有效地抑制了三氯乙烯和二氯苯等多氯副产物的形成。原位漂移分析进一步阐明了氯苯在RuCeMnOx催化剂上氧化的反应机理。本研究为CVOCs的催化氧化提供了一种高效稳定的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Ru-doped MOF-templated CeMnOx catalysts for efficient oxidation of chlorobenzene: synergistic effects of active oxygen species and acid sites

Ru-doped MOF-templated CeMnOx catalysts for efficient oxidation of chlorobenzene: synergistic effects of active oxygen species and acid sites

In this study, CeMnOx was synthesized via a metal–organic framework (MOF)-templated method. Ru doping was subsequently employed to prepare a series of RuCeMnOx catalysts. The RuCeMnOx catalyst with 0.8 wt% Ru (RuCeMnOx-0.8 wt%) demonstrated optimal catalytic activity for chlorobenzene oxidation, achieving 99% chlorobenzene conversion at 268 °C and 97% CO2 selectivity at 300 °C (reaction conditions: 500 ppm chlorobenzene, 30 000 h−1 gas hourly space velocity, and 10 vol% O2). The temperature required for 90% chlorobenzene conversion decreased by 80 °C compared to that for the CeMnOx catalyst. XRD, Raman, XPS, and O2-TPD analyses were conducted to investigate the relationship between the oxidative activity of the RuCeMnOx-0.8 wt% catalyst and its physicochemical properties. The results revealed that the electronic interactions and synergistic effects among Ru, Mn, and Ce promoted the formation of oxygen vacancies and improved oxygen migration capacity, thereby elevating the concentration of active oxygen species in the catalyst. Notably, Py-IR and GC-MS analyses demonstrated that these synergistic effects simultaneously increased surface acid sites and improved HCl selectivity, effectively suppressing the formation of polychlorinated by-products such as trichloroethylene and dichlorobenzene. In situ DRIFTS analysis further elucidated the reaction mechanism of chlorobenzene oxidation over the RuCeMnOx catalyst. This work provides an efficient and stable strategy for the catalytic oxidation of CVOCs.

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来源期刊
New Journal of Chemistry
New Journal of Chemistry 化学-化学综合
CiteScore
5.30
自引率
6.10%
发文量
1832
审稿时长
2 months
期刊介绍: A journal for new directions in chemistry
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