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用于催化的多功能氮化碳纳米结构

Multifunctional carbon nitride nanoarchitectures for catalysis.

作者信息

Kumar Prashant, Singh Gurwinder, Guan Xinwei, Lee Jangmee, Bahadur Rohan, Ramadass Kavitha, Kumar Pawan, Kibria Md Golam, Vidyasagar Devthade, Yi Jiabao, Vinu Ajayan

机构信息

Global Innovative Center for Advanced Nanomaterials, College of Engineering, Science and Environment (CESE), The University of Newcastle, University Drive, Callaghan, 2308, NSW, Australia.

Department of Chemical and Petroleum Engineering, University of Calgary, 2500 University Drive NW, Calgary, Alberta T2N 1N4, Canada.

出版信息

Chem Soc Rev. 2023 Oct 30;52(21):7602-7664. doi: 10.1039/d3cs00213f.

Abstract

Catalysis is at the heart of modern-day chemical and pharmaceutical industries, and there is an urgent demand to develop metal-free, high surface area, and efficient catalysts in a scalable, reproducible and economic manner. Amongst the ever-expanding two-dimensional materials family, carbon nitride (CN) has emerged as the most researched material for catalytic applications due to its unique molecular structure with tunable visible range band gap, surface defects, basic sites, and nitrogen functionalities. These properties also endow it with anchoring capability with a large number of catalytically active sites and provide opportunities for doping, hybridization, sensitization, To make considerable progress in the use of CN as a highly effective catalyst for various applications, it is critical to have an in-depth understanding of its synthesis, structure and surface sites. The present review provides an overview of the recent advances in synthetic approaches of CN, its physicochemical properties, and band gap engineering, with a focus on its exclusive usage in a variety of catalytic reactions, including hydrogen evolution reactions, overall water splitting, water oxidation, CO reduction, nitrogen reduction reactions, pollutant degradation, and organocatalysis. While the structural design and band gap engineering of catalysts are elaborated, the surface chemistry is dealt with in detail to demonstrate efficient catalytic performances. Burning challenges in catalytic design and future outlook are elucidated.

摘要

催化作用是现代化学和制药工业的核心,迫切需要以可扩展、可重现且经济的方式开发无金属、高表面积且高效的催化剂。在不断扩展的二维材料家族中,氮化碳(CN)因其独特的分子结构,具有可调的可见光范围带隙、表面缺陷、碱性位点和氮官能团,已成为催化应用研究最多的材料。这些特性还赋予其大量催化活性位点的锚定能力,并为掺杂、杂化、敏化提供了机会。为了在将CN用作各种应用的高效催化剂方面取得重大进展,深入了解其合成、结构和表面位点至关重要。本综述概述了CN合成方法、其物理化学性质和带隙工程的最新进展,重点关注其在各种催化反应中的独特应用,包括析氢反应、全水分解、水氧化、CO还原、氮还原反应、污染物降解和有机催化。在阐述催化剂的结构设计和带隙工程时,详细讨论了表面化学以展示高效的催化性能。阐明了催化设计中的严峻挑战和未来展望。

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