IF 6.3 2区 材料科学 Q2 CHEMISTRY, PHYSICAL Applied Surface Science Pub Date : 2025-03-20 DOI:10.1016/j.apsusc.2025.163034
Ling Zhou , Yuan Liu , Shaoqiang You , Linsen Peng , Rongbin Zhang , Junchao Wei , Xuewen Wang
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摘要

异质结构的构造,尤其是最佳带排列和高效电荷分离特性,是影响光催化性能的关键因素。本研究展示了通过热解重组 ZnS 来制备分层周期性大孔(HPM)结构,从而获得一系列由 ZnS 和 ZnO 交替组成的异质结。HPM 结构有效缩短了载流子传输距离,提高了电荷传输效率。在 HPM 结构的约束下,ZnS 和 ZnO 的交替桥接促进了双 Z 型机制下量子阱的存在。这种结构能有效分离光生载流子,降低它们的重组率,提高异质结的氧化还原能力。通过量子阱和 HPM 结构的协同影响,HPM ZnS-ZnO 异质结显示出显著的光催化氢气进化性能。这项工作表明,量子阱是能带工程的一种强大策略,当量子阱与 HPM 纳米结构协同结合时,它们可以显著提高光催化性能。
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Hierarchically periodic macroporous ZnS-ZnO alternating heterojunctions with a double Z-scheme for enhanced hydrogen evolution
Heterostructure construction, particularly concerning optimal band arrangement and efficient charge separation characteristics, is a critical factor influencing photocatalytic performance. In this study, the preparation of hierarchically periodic macroporous (HPM) architecture by pyrolytic restructuring of ZnS is demonstrated, thereby yielding a series of heterojunctions composed alternately of ZnS and ZnO. The HPM architecture effectively shortens the carrier transport distance and elevates the charge transport efficiency. The alternating bridge connections of ZnS and ZnO constrained by the HPM architecture, facilitate the presence of quantum wells under the double Z-scheme mechanism. The effective separation of photogenerated carriers is enabled by this configuration, and their recombination rates are reduced, and the redox capacity of the heterojunctions is enhanced. Through synergistic influences of quantum wells and HPM architectures, the HPM ZnS-ZnO heterojunctions showcase remarkable photocatalytic hydrogen evolution performance. This work demonstrates that quantum wells represent a powerful strategy for energy band engineering, when combined synergistically with HPM nanoarchitectures, they can significantly enhance photocatalytic performance.
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来源期刊
Applied Surface Science
Applied Surface Science 工程技术-材料科学:膜
CiteScore
12.50
自引率
7.50%
发文量
3393
审稿时长
67 days
期刊介绍: Applied Surface Science covers topics contributing to a better understanding of surfaces, interfaces, nanostructures and their applications. The journal is concerned with scientific research on the atomic and molecular level of material properties determined with specific surface analytical techniques and/or computational methods, as well as the processing of such structures.
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