首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Role of oxygen vacancies and Mn sites in hierarchical Mn2O3/LaMnO3-delta perovskite composites for aqueous organic pollutants decontamination
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Role of oxygen vacancies and Mn sites in hierarchical Mn2O3/LaMnO3-delta perovskite composites for aqueous organic pollutants decontamination

机译:氧空位和Mn位点在等级Mn2O3 / Lamno3-Delta钙钛矿复合材料中的作用,用于水性有机污染物净化

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摘要

La-based perovskites are catalytically active owing to the oxygen vacancies, redox metal centers of B sites and surface hydroxyl groups. Nevertheless, the insights into these active centers on environmental catalysis are still insufficient. In this study, hierarchical mixed oxides perovskite microspheres were synthesized for catalytic ozonation over oxalic acid and benzotriazole. LaMn4O., with LaMnO3-delta as the dominant crystal phase, demonstrated superior catalytic activity to Mn2O3 and LaMnO3 synthesized from citric acid sol-gel method. Temperature-programmed desorption of NH3 (NH3-TPD) and pyridine-Fourier transform infrared spectroscopy (pyridine-FTIR) tests proved Lewis acid as the main acid type. Temperature-programmed reduction of H-2 (H-2-TPR), O-2-TPD and X-ray photoelectron spectroscopy (XPS) analysis indicated the presence of oxygen vacancies and mixed valences of Mn in the crystal structure facilitated the catalytic process. Moreover, the content of oxygen vacancy was calculated by iodometric titration method. With the aid of theoretical calculations, oxygen vacancies were found to exhibit a strong affinity toward ozone adsorption, where ozone molecules spontaneously dissociated into reactive oxygen species (ROS) such as O-2(center dot-) and O-1(2). The B site of Mn facilitated ozone decomposition by extending the O-O bond of ozone due to the electron transfer from Mn3+/Mn4+ redox cycle. In-situ EPR and quenching tests confirmed the contribution of O-2(center dot-) and O-1(2) in benzotriazole degradation along with (OH)-O-center dot. This study stepped further to unveil the ozone adsorption/decomposition and ROS generation on nanoscale perovskite-based composites.
机译:由于氧气空位,B位点和表面羟基的氧化还原金属中心,La为基础的Perovskites是催化活性的。然而,对这些环境催化的这些活性中心的见解仍然不足。在该研究中,合成了分层混合氧化物钙钛矿微球,用于在草酸和苯并三唑上催化臭氧化。 Lamn4O,用Lamno3-Delta作为主要结晶相,将优异的催化活性显示为由柠檬酸溶胶 - 凝胶法合成的Mn2O3和LamnO3。 NH 3(NH3-TPD)和吡啶 - 傅里叶变换红外光谱(吡啶-FTIR)测试的温度编程解吸证明了Lewis酸作为主要酸类型。 H-2(H-2-TPR),O-2-TPD和X射线光电子谱(XPS)分析的温度编程降低表明存在氧空位的存在和Mn在晶体结构中的混合效果促进了催化过程。此外,通过碘滴定法计算氧空位的含量。借助理论计算,发现氧气空位被发现对臭氧吸附具有很强的亲和力,其中臭氧分子自发地解离反应性氧物质(ROS),例如O-2(中心点)和O-1(2)。由于来自MN3 + / MN4 +氧化还原循环的电子转移,Mn的Bn促进了臭氧分解的臭氧分解。原位EPR和淬火试验证实了O-2(中心点)和O-1(2)在苯并三唑劣化以及(OH)-O中心点的贡献。该研究进一步介绍了基于纳米级钙钛矿复合材料的臭氧吸附/分解和ROS。

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