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用于光化学CO还原的集成纳米结构光催化剂。

Integrated nano-architectured photocatalysts for photochemical CO reduction.

作者信息

Shit Subhash Chandra, Shown Indrajit, Paul Ratul, Chen Kuei-Hsien, Mondal John, Chen Li-Chyong

机构信息

Catalysis & Fine Chemicals Division, CSIR-Indian Institute of Chemical Technology, Uppal Road, Hyderabad 500007, India.

出版信息

Nanoscale. 2020 Dec 8;12(46):23301-23332. doi: 10.1039/d0nr05884j.

Abstract

Recent advances in nanotechnology, especially the development of integrated nanostructured materials, have offered unprecedented opportunities for photocatalytic CO2 reduction. Compared to bulk semiconductor photocatalysts, most of these nanostructured photocatalysts offer at least one advantage in areas such as photogenerated carrier kinetics, light absorption, and active surface area, supporting improved photochemical reaction efficiencies. In this review, we briefly cover the cutting-edge research activities in the area of integrated nanostructured catalysts for photochemical CO2 reduction, including aqueous and gas-phase reactions. Primarily explored are the basic principles of tailor-made nanostructured composite photocatalysts and how nanostructuring influences photochemical performance. Specifically, we summarize the recent developments related to integrated nanostructured materials for photocatalytic CO2 reduction, mainly in the following five categories: carbon-based nano-architectures, metal-organic frameworks, covalent-organic frameworks, conjugated porous polymers, and layered double hydroxide-based inorganic hybrids. Besides the technical aspects of nanostructure-enhanced catalytic performance in photochemical CO2 reduction, some future research trends and promising strategies are addressed.

摘要

纳米技术的最新进展,尤其是集成纳米结构材料的发展,为光催化二氧化碳还原提供了前所未有的机遇。与体相半导体光催化剂相比,大多数这些纳米结构光催化剂在光生载流子动力学、光吸收和活性表面积等方面至少具有一个优势,有助于提高光化学反应效率。在这篇综述中,我们简要介绍了用于光化学二氧化碳还原的集成纳米结构催化剂领域的前沿研究活动,包括水相和气相反应。主要探讨的是定制纳米结构复合光催化剂的基本原理以及纳米结构如何影响光化学性能。具体来说,我们总结了用于光催化二氧化碳还原的集成纳米结构材料的最新进展,主要分为以下五类:碳基纳米结构、金属有机框架、共价有机框架、共轭多孔聚合物和层状双氢氧化物基无机杂化物。除了纳米结构增强光化学二氧化碳还原催化性能的技术方面,还讨论了一些未来的研究趋势和有前景的策略。

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