Facet junction of BiOBr nanosheets boosting spatial charge separation for CO2 photoreduction

面(心理学) 材料科学 电子转移 化学工程 电子 各向异性 热液循环 Crystal(编程语言) 光电子学 纳米技术 光学 光化学 化学 计算机科学 程序设计语言 人格 物理 工程类 五大性格特征 社会心理学 量子力学 心理学
作者
Jiazhi Meng,Youyu Duan,Shaojie Jing,Jiangping Ma,Kaiwen Wang,Kai Zhou,Chaogang Ban,Yang Wang,Bihao Hu,Danmei Yu,Li‐Yong Gan,Xiaoyuan Zhou
出处
期刊:Nano Energy [Elsevier]
卷期号:92: 106671-106671 被引量:102
标识
DOI:10.1016/j.nanoen.2021.106671
摘要

Understanding on the photogenerated charge separation from a microscopic level remains a challenge and is highly desirable as it provides a cornerstone for designing high-performance photocatalysts. Herein, facet engineering is chosen as a tool to reveal the relationship between the charge separation/transfer and crystal structure. A series of BiOBr nanosheets with dominantly exposed facet of (001) or (010) as well as different lateral facet exposure ratios are constructed via adjusting pH value during the hydrothermal process. It is found that exposure of anisotropic crystal facets allows the separative transfer of photogenerated electrons and holes onto the lateral facets and dominantly exposed facets, respectively, which is attributed to the junction formed between distinct facets (i.e., facet junction). In the case of BiOBr-5 with (010)/(102) facet junction, the electron transfer rate (kET) and efficiency (ηET) are 3.658 × 106s−1 and 54.09%, which are superior than the counterpart of BiOBr-1 with (001)/(110) facet junction. The fast electron transfer rate and high transfer efficiency of BiOBr-5 result in the high CO evolution rate from CO2 photoreduction under artificial sunlight. Our work may bring some new insights into the mechanism of facet junction and rational design of photocatalysts with high performance for solar energy storage in future.
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