光催化
苯甲醛
氧化还原
六方晶系
制氢
对偶(语法数字)
催化作用
材料科学
氢
化学
光化学
无机化学
有机化学
结晶学
艺术
文学类
作者
Xu Tan,Grayson Zhi Sheng Ling,Tan Ji Siang,Xianhai Zeng,Abdul Rahman Mohamed,Wee‐Jun Ong
标识
DOI:10.1016/j.nanoms.2025.02.001
摘要
Despite advances in photocatalytic half-reduction reactions, challenges remain in effectively utilizing electron-hole pairs in concurrent redox processes. The present study involved the construction of a p-n junction Co 3 O 4 /Zn 3 In 2 S 6 (CoZ) hybrid with a complementary band edge potential. The photocatalyst formed by the 2D assembled-nanostructure portrayed an optimal yield of 13.8 (H 2 ) and 13.1 (benzaldehyde) mmol g −1 h −1 when exposed to light ( λ > 420 nm), surpassing 1 % Pt-added ZIS (12.4 (H 2 ) and 10.71 (benzaldehyde) mmol g −1 h −1 ). Around 95 % of the electron-hole utilization rate was achieved. The solar-to-hydrogen (STH) and apparent quantum yield (AQY) values of 0.466 % and 4.96 % (420 nm) achieved by this system in the absence of sacrificial agents exceeded those of previous works. The exceptional performance was mostly ascribed to the synergistic development of adjoining p-n heterojunctions and the built-in electric field for effective charge separation. Moreover, scavenger studies elucidated the intricate mechanistic enigma of the dual-redox process, in which benzaldehyde was produced via O-H activation and subsequent C-H cleavage of benzyl alcohol over CoZ hybrids. Furthermore, the widespread use of the optimal 1-CoZ composites was confirmed in multiple photoredox systems. This work presents an innovative perspective on the construction of dual-functioning p-n heterojunctions for practical photoredox applications.
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