4.8 Article

Z-scheme transition metal bridge of Co9S8/Cd/CdS tubular heterostructure for enhanced photocatalytic hydrogen evolution

期刊

APPLIED CATALYSIS B-ENVIRONMENTAL
卷 286, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.apcatb.2020.119853

关键词

Cadmium sulfide; Cobalt sulfide; Photocatalytic H(2)evolution; Light absorption; Charge transfer

资金

  1. National University of Singapore
  2. National Research Foundation
  3. Prime Minister's Office, Singapore
  4. National Environment Agency under the Waste-to-Energy Competitive Research Program [WTE CRP 1501 103, R-279-000-491-279]
  5. Agency for Science, Technology and Research [AME-IRG A1783c0016, R-279-000-509-305]
  6. Ministry of Education [MOE2017-T2-2-130, R-279-000-544-112, MOE2017-T2-1-140, R-263-000-C85-112]

向作者/读者索取更多资源

This study introduces a novel Co9S8/Cd/CdS Z-scheme heterojunction with a unique hierarchical tubular structure, showing high hydrogen generation rate and excellent light absorption properties, indicating potential applications in solar-to-chemical conversion.
Narrow band gap semiconductors heterojunction with superior coupling and composition matching can enhance light absorption, reduce carrier recombination and increase redox activity. Here, we report Co9S8/Cd/CdS Z-scheme type heterojunctions with hierarchical tubular heterostructure and inexpensive transition metallic electronic bridge between two distinct semiconductors by a simultaneous immobilization and in-situ reduction strategy. The designed heterostructure greatly promotes the redox activity owing to high-density catalytic sites, excellent visible light capture by small band gap Co9S8/CdS and hollow framework in conjunction with fast charge separation and smooth transfer through intermediary conductive Cd. The optimized photocatalyst exhibits a hydrogen generation rate up to 10.42 mu mol h(-1) without obvious drop in performance over multiple cycles. The structural design, matching tandem constituent and continuous phase mediator are the pivotal factors to engender an efficient solid-state Z-scheme photocatalysis. The facile synthetic approach and noble metal free tandem structure of this work provide alternative avenues for the development of heterojunction photocatalysts for efficient solar-to-chemical conversion.

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