Affiliation:
1. College of Chemistry & Chemical and Environmental Engineering, Weifang University, Weifang 261061, China
2. College of Science, Nanjing Forestry University, Nanjing 210037, China
Abstract
Constructive defect engineering has emerged as a prominent method for enhancing the performance of photocatalysts. The mechanisms of the influence of defect types, concentrations, and distributions on the efficiency, selectivity, and stability of CO2 reduction were revealed for this paper by analyzing the effects of different types of defects (e.g., metallic defects, non-metallic defects, and composite defects) on the performance of photocatalysts. There are three fundamental steps in defect engineering techniques to promote photocatalysis, namely, light absorption, charge transfer and separation, and surface-catalyzed reactions. Defect engineering has demonstrated significant potential in recent studies, particularly in enhancing the light-harvesting, charge separation, and adsorption properties of semiconductor photocatalysts for reducing processes like carbon dioxide reduction. Furthermore, this paper discusses the optimization method used in defect modulation strategy to offer theoretical guidance and an experimental foundation for designing and preparing efficient and stable photocatalysts.
Reference75 articles.
1. Energy, environment and sustainable development;Omer;Renew. Sust. Energ. Rev.,2008
2. Supercharged CO2 photothermal catalytic methanation: High conversion, rate, and selectivity;Zhu;Angew. Chem. Int. Edit.,2023
3. Heterojunction photocatalysts;Low;Adv. Mater.,2017
4. Tai, X.S., Yan, X.H., and Wang, L.H. (2024). Synthesis, structural characterization, Hirschfeld surface analysis, density functional theory, and photocatalytic CO2 reduction activity of a new Ca(II) complex with a Bis-Schiff base ligand. Molecules, 29.
5. Photocatalytic CO2 reduction to C2+ products;Albero;ACS Catal.,2020