光催化
材料科学
异质结
载流子
量子点
光电子学
卤化物
半导体
复合数
吸收(声学)
可见光谱
化学工程
量子效率
金属
光化学
量子产额
纳米技术
太阳能
氮化碳
作者
Xinran Huang,Tao Ma,Ronggui Yu,Qinghe Xiao,Qi Liu,Jianpeng Dong,Huitao Fan,Liya Wang,Bo Li
标识
DOI:10.1021/acsaem.6c00270
摘要
Utilizing solar energy to achieve photocatalytic CO 2 reduction represents a potential method for CO 2 conversion. As an emerging semiconductor material, metal halide perovskites offer advantages such as a broad light absorption range, long carrier lifetime, and tunable energy band, demonstrating good application prospects in the field of photocatalysis. CsPbBr 3 (CPB) is a representative metal halide perovskite, possessing stable active sites and excellent photocatalytic activity. However, CPB tends to suffer from structural instability in certain environments, and its high carrier recombination rate leads to inadequate photocatalytic performance. To address these issues, we loaded CsPbBr 3 quantum dots (CPB QDs) onto porous polygonal tubular carbon nitride (PCN) to construct a CPB-CN composite photocatalyst with a type-II heterojunction, which enables efficient photocatalytic CO 2 reduction. Compared with pristine CPB QDs, the CPB-CN heterojunction significantly enhances carrier separation. By further optimizing the CPB-CN ratio, the optimal 20% CPB-CN composite photocatalyst exhibited improved photocatalytic reduction performance and charge separation efficiency. The CO 2 -to-CO reduction rate reached 20.94 μmol g –1 h –1, almost 3-fold of pure CPB. The improved photocatalytic properties can be ascribed to efficient electron extraction and migration at the interface of PCN and CPB QDs, the high specific surface area, and enhanced visible-light harvesting. This work demonstrates the potential for the design of highly catalytically active perovskite-based systems.
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