Multifunctional carbon nitride nanoarchitectures for catalysis

被引:109
作者
Kumar, Prashant [1 ]
Singh, Gurwinder [1 ]
Guan, Xinwei [1 ]
Lee, Jangmee [1 ]
Bahadur, Rohan [1 ]
Ramadass, Kavitha [1 ]
Kumar, Pawan [2 ]
Kibria, Md. Golam [2 ]
Vidyasagar, Devthade [3 ]
Yi, Jiabao [1 ]
Vinu, Ajayan [1 ]
机构
[1] Univ Newcastle, Global Innovat Ctr Adv Nanomat, Coll Engn Sci & Environm CESE, Univ Dr, Callaghan, NSW 2308, Australia
[2] Univ Calgary, Dept Chem & Petr Engn, 2500 Univ Dr NW, Calgary, AB T2N 1N4, Canada
[3] Kyungpook Natl Univ, Sch Mat Sci & Engn, Daegu 41566, South Korea
基金
澳大利亚研究理事会;
关键词
PHOTOCATALYTIC H-2 EVOLUTION; SINGLE-ATOM CATALYSTS; BINUCLEAR RUTHENIUM(II) COMPLEX; PULSED-LASER DEPOSITION; HIGH-NITROGEN CONTENT; ONE-POT SYNTHESIS; VISIBLE-LIGHT; HYDROGEN EVOLUTION; CO2; REDUCTION; SURFACE-AREA;
D O I
10.1039/d3cs00213f
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
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, etc. 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, CO2 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. Carbon nitrides, with feasibility of tailored band gap via suitable nanoarchitectonics, are deemed as best catalysts amongst existing materials, especially for HER, OWS, COR, NRR, water oxidation, pollutant removal, and organocatalysis.
引用
收藏
页码:7602 / 7664
页数:63
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