School of Chemical and Biomolecular Engineering, The University of Sydney, Sydney, NSW 2006, Australia.
School of Mechanical Engineering, Yeungnam University, Gyeongsan, 712-749, South Korea.
J Environ Manage. 2019 May 15;238:25-40. doi: 10.1016/j.jenvman.2019.02.075. Epub 2019 Mar 4.
In recent years, various facile and low-cost methods have been developed for the synthesis of advanced nanostructured photocatalytic materials. These catalysts are required to mitigate the energy crisis, environmental deterioration, including water and air pollution. Among the various semiconductors explored, recently novel classes of polymeric graphitic carbon nitride (g-CN)-based heterogeneous photocatalysts have established much greater importance because of their unique physiochemical properties, large surface area, low price, and long service life, ease of synthesis, product scalability, controllable band gap properties, low toxicity, and high photocatalytic activity. The present comprehensive review focuses on recent achievements in a number of facile chemical synthesis methods for semiconducting polymeric carbon nitrides and their heterogeneous nanohybrids with various dopants, nanostructured metals, metal oxides, and nanocarbons, as well as the parameters influencing their physiochemical properties and photocatalytic efficiency, which are discussed with reference to various catalytic applications such as air (NO) purification, wastewater treatment, hydrogen generation, CO reduction, and chemical transformation. The mechanisms for the superior photocatalytic activity of polymeric g-CN-based heterogeneous photocatalysts are also discussed. Finally, the challenges, prospects, and future directions for photocatalytic polymeric g-CN-based semiconducting materials are described.
近年来,已经开发出了各种简便且低成本的方法来合成先进的纳米结构光催化材料。这些催化剂需要缓解能源危机和环境恶化,包括水污染和空气污染。在探索的各种半导体中,最近新型的聚合物石墨相氮化碳(g-CN)基异质光催化剂因其独特的物理化学性质、大表面积、低廉的价格和长寿命、易于合成、产品可扩展性、可控带隙特性、低毒性和高光催化活性而变得更加重要。本综述重点介绍了近年来在半导体聚合物碳氮化物的简便化学合成方法及其与各种掺杂剂、纳米结构金属、金属氧化物和纳米碳的异质纳米杂化方面的最新进展,以及影响其物理化学性质和光催化效率的参数,同时还参考了各种催化应用,如空气(NO)净化、废水处理、氢气生成、CO 还原和化学转化,讨论了这些参数。还讨论了基于聚合物 g-CN 的异质光催化剂具有优异光催化活性的机制。最后,描述了基于光催化聚合物 g-CN 的半导体材料面临的挑战、前景和未来方向。