材料科学
硫系化合物
异质结
电场
领域(数学)
化学键
化学工程
量子化学
酒
纳米技术
化学物理
光电子学
分子
有机化学
数学
量子力学
物理
工程类
化学
纯数学
作者
Yi‐Wen Han,Yu‐Ting Chu,Lei Ye,Tian‐Jun Gong,Xuebin Lü,Yao Fu
标识
DOI:10.1002/adfm.202411991
摘要
Abstract Rationally designing nanostructures based on an adequate understanding of structure‐performance relationships is key for directional charge transfer regulation in heterojunction photocatalysts. A general strategy is developed for synthesizing bifunctional Sv‐chalcogenide/Ti 3 C 2 Schottky junctions (Sv = sulfur vacancies, chalcogenides containing CdS, CdIn 2 S 4 , ZnIn 2 S 4 , ZnS, CuInS 2 ) featuring a giant built‐in electric field (BIEF) via defect‐mediated heterocomponent anchorage, which consists of sulfur vacancy modulation of chalcogenides and Ti 3 C 2 nanoparticle anchoring at defects via interfacial Metal─Oxygen (M─O) bonds. These heterojunctions have the distinctive interface structure of semicoherent phase boundaries and a directionally aligned BIEF pointing from chalcogenides to Ti 3 C 2 . The enhanced BIEF creates an asymmetrical charge distribution, which not only governs the charge migration behavior by enabling charge carrier localization and delocalized electron transport continuity but also regulates the molecular catalytic behavior by optimizing pivotal intermediate adsorption/activation ( * Ar‐CH(R 2 )‐OH in dehydrogenation and H * in H 2 evolution) in selective alcohol photooxidation coupled with H 2 generation. Encouragingly, Sv‐chalcogenide/Ti 3 C 2 exhibits unprecedented performance (up to 13.34‐fold higher efficiency than unmodulated chalcogenides) and good substrate compatibility for various alcohols. This work demonstrates the synergistic effects of surface electron density control and interfacial interaction modulation in regulating BIEFs, elucidating the substantial impact of reinforced BIEF on carrier transport properties and molecular catalytic behavior.
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