| Literature DB >> 29687485 |
Qin Zhang1, Wenjie Wang1, Jiaqian Zhang1, Xiaohui Zhu1,2, Qiqi Zhang1, Yujing Zhang1, Zemian Ren1, Shuaishuai Song1, Jinming Wang1, Zihao Ying1, Rui Wang3, Xiaohui Qiu3, Tianyou Peng1, Lei Fu1,2.
Abstract
Highly efficient photocatalytic hydrogen evolution (PHE) is highly desirable for addressing the global energy crisis and environmental problems. Although much attention has been given to electron-hole separation, ridding photocatalysts of poor efficiency remains challenging. Here, a two-electron catalytic reaction is developed by utilizing the distinct trion behavior of ReS2 and the efficient reduction of two H+ (2H+ + 2e- → H2 ) is realized. Due to the monolayer-like structure of the catalyst, the free electrons in ReS2 can be captured by the tightly bound excitons to form trions consisting of two electrons and one hole. These trions can migrate to the surface and participate in the two-electron reaction at the abundant active sites. As expected, such a two-electron catalytic reaction endows ReS2 with a PHE rate of 13 mmol g-1 h-1 under visible light irradiation. Meanwhile, this reaction allows the typically poor PHE efficiency of pure transition metal dichalcogenides to be overcome. The proposed two-electron catalytic reaction provides a new approach to the design of photocatalysts for PHE.Entities:
Keywords: ReS2; hydrogen evolution; trion; two-electron catalytic reaction
Year: 2018 PMID: 29687485 DOI: 10.1002/adma.201707123
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849