光催化
氧化还原
材料科学
异质结
催化作用
苯甲醇
光热治疗
选择性
光化学
化学工程
载流子
降级(电信)
均分解
苯甲醛
纳米技术
动力学
光热效应
化学反应工程
激进的
同步
偶联反应
半导体
工作(物理)
化学动力学
化学反应
联轴节(管道)
作者
Renzhi Xiong,Fangde Liu,Yue Wu,Ziwei Gong,Yanhe Xiao,Baochang Cheng,Shuijin Lei
出处
期刊:Small
[Wiley]
日期:2026-04-11
卷期号:22 (30): e14299-e14299
标识
DOI:10.1002/smll.202514299
摘要
ABSTRACT Photocatalytic H 2 O 2 production coupled with selective oxidation of benzyl alcohol represents a highly attractive yet challenging “one‐stone‐two‐birds” strategy for sustainable chemical synthesis. The major obstacles lie in the difficulty of synchronizing spatial charge separation, preserving high redox potentials, and precisely steering the reaction pathways. Herein, a novel hollow ZnCdS/CuInS 2 S‐scheme heterojunction is constructed through solid‐solution band engineering. This multifunctional design integrates three synergistic effects to break the above limitations: (i) rapid charge separation driven by S‐scheme heterojunction while retaining strong redox capability; (ii) broad‐band light harvesting and photothermal effect facilitated by hollow nanobox architecture; (iii) ideal reaction kinetics and thermodynamics optimized by photothermal temperature rise. The developed catalyst achieves remarkable co‐production rates under full‐spectrum irradiation: 3052.5 µmol g −1 h −1 for H 2 O 2 and 5211.6 µmol g −1 h −1 for benzaldehyde, with nearly 100% selectivity for benzaldehyde. It is unraveled that the photothermal‐induced moderate local heating triggers a controllable homolysis of H 2 O 2 , generating a favorable concentration of hydroxyl radicals. This process enables precise activation of the C─H bonds in benzyl alcohol while suppressing unwanted over‐oxidation pathways. This work establishes a paradigm for advanced photocatalytic coupling systems, where charge‐separation engineering and photothermal‐microenvironment regulation act in concert to promote efficient and selective solar‐to‐chemical conversions.
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