光催化
还原(数学)
异质结
吸附
可再生能源
载流子
材料科学
复合数
辐照
纳米技术
光电子学
化学工程
化学
工程类
数学
复合材料
物理
电气工程
催化作用
物理化学
核物理学
生物化学
几何学
作者
Yang Wu,Fanghe Zhou,Ningchao Sun,Jiang Wu,Yongfeng Qi,Yonglin Zhang,Jingyu Song,Yijing Sun,Qizhen Liu,Xudong Wang,Jianing Mi,Miao Li
标识
DOI:10.1016/j.jcis.2024.02.119
摘要
Developing efficient heterojunction photocatalysts with enhanced charge transfer and reduced recombination rates of photogenerated carriers is crucial for harnessing solar energy in the photocatalytic CO2 reduction into renewable fuels. This study employed electrostatic self-assembly techniques to construct a 3D Bi2WO6/ZnIn2S4 direct Z-scheme heterojunctions. The unique 3D structure provided abundant active sites and facilitated CO2 adsorption. Moreover, the optimized Bi2WO6/ZnIn2S4 composite demonstrated an impressive CH4 yield of 19.54 μmol g−1 under 4 h of simulated sunlight irradiation, which was about 8.73 and 16.30-fold higher than pure ZnIn2S4 and Bi2WO6. The observed enhancements in photocatalytic performance are attributed to forming a direct Z-scheme heterojunction, which effectively promotes charge transport and migration. This research introduces a novel strategy for constructing photocatalysts through the synergistic effect of morphological interface modifications.
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