College of Environmental Science and Engineering, Hunan University, Changsha, 410082, PR China; Key Laboratory of Environmental Biology and Pollution Control (Hunan University), Ministry of Education, Hunan University, Changsha, 410082, PR China.
College of Environmental Science and Engineering, Hunan University, Changsha, 410082, PR China; Key Laboratory of Environmental Biology and Pollution Control (Hunan University), Ministry of Education, Hunan University, Changsha, 410082, PR China.
J Hazard Mater. 2020 May 15;390:122128. doi: 10.1016/j.jhazmat.2020.122128. Epub 2020 Jan 26.
Silver-based semiconductor photocatalysts are promising materials for solving environmental and energy issues due to their strong optical absorption, excellent quantum efficiency and photoelectrochemical properties. However, the uncontrollable photocorrosion and high use cost of single silver-based semiconductor photocatalysts limit its practical application. The construction of Z-scheme photocatalytic systems that mimic natural photosynthesis can not only enhance the photocatalytic activity of silver-based semiconductor photocatalysts, but also improve their stability and reduce the use costs. This critical review concisely highlights the basic principles of Z-scheme photocatalytic systems, and discusses the construction of silver-based semiconductor Z-scheme photocatalytic systems and the roles of metallic Ag in there and summarizes the synthesis methods of silver-based semiconductor Z-scheme photocatalytic systems. Then, a series of the solar-driven applications are elaborated, including organic pollutants degradation, hydrogen production, and carbon dioxide reduction. Meanwhile, the mechanism and difficult level of these photocatalytic reactions are also described. Besides, metal organic frameworks (MOFs) as a novel type of photocatalysts have attracted growing attention. The novel combination of silver-based semiconductors with typical photoactive MOFs is highlighted based on the Z-scheme photocatalytic systems. Eventually, the future challenges and prospects in the development of silver-based semiconductor Z-scheme photocatalytic systems are presented.
基于银的半导体光催化剂由于其强的光学吸收、优异的量子效率和光电化学性质,是解决环境和能源问题的有前途的材料。然而,单一基于银的半导体光催化剂的不可控光腐蚀和高使用成本限制了其实际应用。构建模拟自然光合作用的 Z 型光催化系统不仅可以提高基于银的半导体光催化剂的光催化活性,还可以提高其稳定性并降低使用成本。本综述简要强调了 Z 型光催化系统的基本原理,并讨论了基于银的半导体 Z 型光催化系统的构建以及金属 Ag 在其中的作用,总结了基于银的半导体 Z 型光催化系统的合成方法。然后,详细阐述了一系列太阳能驱动的应用,包括有机污染物降解、氢气产生和二氧化碳还原。同时,还描述了这些光催化反应的机制和难度水平。此外,金属有机骨架(MOFs)作为一种新型的光催化剂,已经引起了越来越多的关注。基于 Z 型光催化系统,强调了银基半导体与典型光活性 MOFs 的新颖组合。最后,提出了银基半导体 Z 型光催化系统发展面临的未来挑战和展望。