Construction of zinc-indium-sulfide/indium oxide step-scheme junction catalyst for enhanced photocatalytic activities of pollutant degradation and hydrogen generation
Author:
Publisher
Elsevier BV
Subject
Filtration and Separation,Analytical Chemistry
Reference55 articles.
1. Lanthanum orthovanadate/bismuth oxybromide heterojunction for enhanced photocatalytic air purification and mechanism exploration;Zou;Chem. Eng. J.,2020
2. Effects of Ag loading on structural and photocatalytic properties of flower-like ZnO microspheres;Zhang;Appl. Surf. Sci.,2017
3. Vacancy mediated Z-scheme charge transfer in a 2D/2D La2Ti2O7/g-C3N4 nanojunction as a bifunctional photocatalyst for solar-to-energy conversion;Wang;J. Mater. Chem. A,2020
4. Sb2WO6/BiOBr 2D nanocomposite S-scheme photocatalyst for NO removal;Wang;J. Mater. Sci. Technol.,2020
5. Novel BiSbO4/BiOBr nanoarchitecture with enhanced visible-light driven photocatalytic performance: Oxygen-induced pathway of activation and mechanism unveiling;Wang;Appl. Surf. Sci.,2019
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