| Literature DB >> 31081183 |
Jun Di1,2, Jiexiang Xia1,3, Matthew F Chisholm4, Jun Zhong5, Chao Chen2, Xingzhong Cao6, Fan Dong7, Zhen Chi8, Hailong Chen8, Yu-Xiang Weng8, Jun Xiong1, Shi-Ze Yang4, Huaming Li1, Zheng Liu2, Sheng Dai3.
Abstract
Solar photocatalysis is a potential solution to satisfying energy demand and its resulting environmental impact. However, the low electron-hole separation efficiency in semiconductors has slowed the development of this technology. The effect of defects on electron-hole separation is not always clear. A model atomically thin structure of single-unit-cell Bi3 O4 Br nanosheets with surface defects is proposed to boost photocatalytic efficiency by simultaneously promoting bulk- and surface-charge separation. Defect-rich single-unit-cell Bi3 O4 Br displays 4.9 and 30.9 times enhanced photocatalytic hydrogen evolution and nitrogen fixation activity, respectively, than bulk Bi3 O4 Br. After the preparation of single-unit-cell structure, the bismuth defects are controlled to tune the oxygen defects. Benefiting from the unique single-unit-cell architecture and defects, the local atomic arrangement and electronic structure are tuned so as to greatly increase the charge separation efficiency and subsequently boost photocatalytic activity. This strategy provides an accessible pathway for next-generation photocatalysts.Entities:
Keywords: charge separation; defect engineering; electronic structure; photocatalytic nitrogen fixation; single-unit-cell Bi3O4Br
Year: 2019 PMID: 31081183 DOI: 10.1002/adma.201807576
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849