材料科学
光催化
吸收(声学)
制氢
半导体
激子
工作(物理)
化学工程
氢
纳米技术
化学物理
扩散
催化作用
光电子学
热力学
化学
复合材料
凝聚态物理
物理
生物化学
工程类
有机化学
作者
Bilin Wang,Shaohui Guo,Xu Xin,Youzi Zhang,Yijin Wang,Chenghua Li,Yaru Song,Dongshan Deng,Xuanhua Li,Ana Jorge Sobrido,Maria‐Magdalena Titirici
标识
DOI:10.1002/aenm.202001575
摘要
Abstract Insufficient light absorption and low carrier separation/transfer efficiency constitute two key issues that hinder the development of efficient photocatalytic hydrogen production. Here, multishell ZnS/CoS 2 bisulfide microspheres with gradient distribution of Zn based on the heat diffusion theory are designed. The Zn distribution can be adjusted by regulating the heating rate and manipulating the diffusion coefficients of the different elements conforming the multishell photocatalyst. Because of the unique structure, a gradient energy level is created from the core to the exterior of the multishell microspheres, which effectively facilitates the exciton separation and electron transfer. In addition, stronger light absorption and larger specific surface area have been achieved in the multishell ZnS/CoS 2 photocatalysts. As a result, the multishell ZnS/CoS 2 microspheres with gradient distribution of Zn exhibit a remarkable hydrogen production rate of 8001 µ mol g −1 h −1 , which is 3.5 times higher than that of the normal multishell ZnS/CoS 2 particles with well‐distributed Zn and 11.3 times higher than that of the mixed nonshell ZnS and CoS 2 particles. This work demonstrates for the first time that controlling the diffusion rate of the different elements in the semiconductor is an effective route to simultaneously regulate morphology and structure to design highly efficient photocatalysts.
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