The Structures and Compositions Design of the Hollow Micro–Nano-Structured Metal Oxides for Environmental Catalysis

Nanomaterials Pub Date : 2024-07-12 DOI:10.3390/nano14141190
Jingxin Xu, Yufang Bian, Wenxin Tian, Chao Pan, Cai-e Wu, Leilei Xu, Mei Wu, Mindong Chen
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Abstract

In recent decades, with the rapid development of the inorganic synthesis and the increasing discharge of pollutants in the process of industrialization, hollow-structured metal oxides (HSMOs) have taken on a striking role in the field of environmental catalysis. This is all due to their unique structural characteristics compared to solid nanoparticles, such as high loading capacity, superior pore permeability, high specific surface area, abundant inner void space, and low density. Although the HSMOs with different morphologies have been reviewed and prospected in the aspect of synthesis strategies and potential applications, there has been no systematic review focusing on the structures and compositions design of HSMOs in the field of environmental catalysis so far. Therefore, this review will mainly focus on the component dependence and controllable structure of HSMOs in the catalytic elimination of different environmental pollutants, including the automobile and stationary source emissions, volatile organic compounds, greenhouse gases, ozone-depleting substances, and other potential pollutants. Moreover, we comprehensively reviewed the applications of the catalysts with hollow structure that are mainly composed of metal oxides such as CeO2, MnOx, CuOx, Co3O4, ZrO2, ZnO, Al3O4, In2O3, NiO, and Fe3O4 in automobile and stationary source emission control, volatile organic compounds emission control, and the conversion of greenhouse gases and ozone-depleting substances. The structure–activity relationship is also briefly discussed. Finally, further challenges and development trends of HSMO catalysts in environmental catalysis are also prospected.
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用于环境催化的中空微纳结构金属氧化物的结构和组成设计
近几十年来,随着无机合成技术的飞速发展和工业化进程中污染物排放量的不断增加,空心结构金属氧化物(HSMOs)在环境催化领域发挥了引人注目的作用。这是因为与固体纳米颗粒相比,中空结构金属氧化物具有独特的结构特点,例如高负载能力、优异的孔隙渗透性、高比表面积、丰富的内部空隙和低密度。虽然不同形态的 HSMOs 已在合成策略和潜在应用方面进行了综述和探讨,但迄今为止,还没有一篇系统综述侧重于环境催化领域中 HSMOs 的结构和组成设计。因此,本综述将主要关注 HSMOs 在催化消除不同环境污染物(包括汽车和固定污染源排放、挥发性有机化合物、温室气体、臭氧消耗物质和其他潜在污染物)过程中的组分依赖性和结构可控性。此外,我们还全面综述了主要由 CeO2、MnOx、CuOx、Co3O4、ZrO2、ZnO、Al3O4、In2O3、NiO 和 Fe3O4 等金属氧化物组成的空心结构催化剂在汽车和固定污染源排放控制、挥发性有机化合物排放控制以及温室气体和臭氧消耗物质转化中的应用。此外,还简要讨论了结构与活性的关系。最后,还展望了 HSMO 催化剂在环境催化领域面临的进一步挑战和发展趋势。
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