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用于光催化、热催化和光热催化的缺陷氧化钼的开发。

Development of defective molybdenum oxides for photocatalysis, thermal catalysis, and photothermal catalysis.

作者信息

Ge Hao, Kuwahara Yasutaka, Yamashita Hiromi

机构信息

Division of Materials and Manufacturing Science, Graduate School of Engineering, Osaka University, 2-1 Yamada-oka, Osaka 565-0871, Japan.

Innovative Catalysis Science Division, Institute for Open and Transdisciplinary Research Initiatives (OTRI), Osaka University, 2-1 Yamada-oka, Suita, Osaka 565-0871, Japan.

出版信息

Chem Commun (Camb). 2022 Jul 28;58(61):8466-8479. doi: 10.1039/d2cc02658a.

Abstract

The localized surface plasmon resonance (LSPR) of noble metals has been investigated for decades for applications in various catalysis reactions and optical research studies, but its development has been hampered by inefficient light absorption and high costs. In comparison, the creation of less expensive semiconductors (metal oxides) with strong plasmonic absorption is an appealing option, particularly defective molybdenum oxide (HMoO) has received considerable attention and investigation as a promising plasmonic material for a variety of catalytic reactions (photocatalysis, thermocatalysis, photothermal catalysis, ).The LSPR effect of HMoO can be tuned throughout a broad spectrum range from visible to near-infrared (NIR) by altering the doping amount by electrochemical control, chemical reduction, or photochemical control. Notably, defects (oxygen vacancies) in HMoO arise in conjunction with the LSPR effect, resulting in the formation of unique and useful active sites in a range of catalytic processes. In this review, we explore the formation mechanism of HMoO with plasmonic features and discuss its applications in photocatalysis, thermocatalysis, and photothermal catalysis.

摘要

几十年来,人们一直在研究贵金属的局域表面等离子体共振(LSPR)在各种催化反应和光学研究中的应用,但其发展受到光吸收效率低和成本高的阻碍。相比之下,制备具有强等离子体吸收的低成本半导体(金属氧化物)是一个有吸引力的选择,特别是缺陷氧化钼(HMoO)作为一种有前途的等离子体材料,在各种催化反应(光催化、热催化、光热催化)中受到了广泛关注和研究。通过电化学控制、化学还原或光化学控制改变掺杂量,HMoO的LSPR效应可以在从可见光到近红外(NIR)的宽光谱范围内进行调节。值得注意的是,HMoO中的缺陷(氧空位)与LSPR效应同时出现,在一系列催化过程中形成独特且有用的活性位点。在这篇综述中,我们探讨了具有等离子体特性的HMoO的形成机制,并讨论了其在光催化、热催化和光热催化中的应用。

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