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含氧空位金属氧化物半导体的合成、表征及在能源与环境催化中的应用。

Synthesis, characterization and utilization of oxygen vacancy contained metal oxide semiconductors for energy and environmental catalysis.

机构信息

School of Chemistry & Chemical Engineering, Guangxi University, Nanning, 530004, China; MOE Key Laboratory of New Processing Technology for Non-ferrous Metals and Materials, Guangxi Key Laboratory of Processing for Non-ferrous Metals and Featured Materials, Guangxi University, Nanning, 530004, China; School of Resources, Environment and Materials, Guangxi University, Nanning, 530004, China.

School of Marine Sciences, Guangxi University, Nanning, 530004, China.

出版信息

Chemosphere. 2021 Jun;272:129534. doi: 10.1016/j.chemosphere.2021.129534. Epub 2021 Jan 4.

Abstract

Developing novel functional materials with promising desired properties in enhancing energy conversion and lowering the catalytic reaction barriers is essential for the demand to solve the increasingly severe energy and environmental crisis nowadays. Metal oxide semiconductors (MOS) are widely used in the field of catalysis because of its excellent catalytic characteristics. Introduction of defects, in addition to the adjustment of composition and atomic arrangement in the materials can effectively improve the materials' catalytic performance. Especially, introducing oxygen vacancies (OVs) into the lattice structure of MOS has been developed as a facile route to improve MOS's optical and electronic transmission characteristics. And a large number of metal oxides with rich OVs have been served in oxygen reduction reaction (ORR), oxygen evolution reaction (OER), hydrogen evolution reaction (HER), carbon dioxide reduction reaction (CO-RR) photo-degradation of organic pollutants, etc. This small review briefly outlines some preparation techniques to introduce OVs into MOS, and the characterization techniques to identify and quantify the OVs in MOS. The applications of OVs contained MOS especially in energy and environmental catalysis areas are also discussed. The effects of OVs types and concentrations on the catalytic performances are deliberated. Finally, the defective structure-catalytic property relationship is highlighted, and the future status and opportunities of MOS containing OVs in the catalytic field are suggested.

摘要

开发具有增强能量转换和降低催化反应势垒的理想性能的新型功能材料,对于解决当今日益严重的能源和环境危机的需求至关重要。金属氧化物半导体(MOS)因其优异的催化特性而在催化领域得到广泛应用。除了调整材料的组成和原子排列外,引入缺陷还可以有效地提高材料的催化性能。特别是,将氧空位(OVs)引入 MOS 的晶格结构已被开发为一种提高 MOS 的光学和电子传输特性的简便途径。大量具有丰富 OVs 的金属氧化物已用于氧还原反应(ORR)、氧析出反应(OER)、析氢反应(HER)、二氧化碳还原反应(CO-RR)、有机污染物的光降解等。本文简要概述了一些将 OVs 引入 MOS 的制备技术,以及用于识别和量化 MOS 中 OVs 的表征技术。还讨论了 OVs 包含的 MOS 特别是在能源和环境催化领域的应用。讨论了 OVs 类型和浓度对催化性能的影响。最后,强调了缺陷结构-催化性能关系,并提出了 OVs 包含的 MOS 在催化领域的未来地位和机遇。

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