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Localized nano-solid-solution induced by Cu doping in ZnS for efficient solar hydrogen generation

  • Naixu Li
  • , Longzhou Zhang
  • , Jiancheng Zhou
  • , Dengwei Jing
  • , Yueming Sun
  • Southeast University, Nanjing
  • Xi'an Jiaotong University

Research output: Contribution to journalArticlepeer-review

21 Scopus citations

Abstract

Nanosized photocatalysts have been shown to be important to many modern photocatalytic reactions. Control of the microstructure of the nanocrystals enables regulation of their optical properties and enhancement of specific reactions. Here, Cu2+-doped ZnS nanosphere photocatalysts with hierarchical nanostructures and controllable sizes were synthesized via a facile wet-chemical reaction. We demonstrated that small amounts of Cu2+ doping could give rise to the formation of a variety of localized, nanosized Cu1-xZnxS solid solutions that are separated by a continuous ZnS medium. The nano-solid-solutions have predictable band structures and an average size of several nanometers, which ensure facile generation of electron-hole pairs by visible light irradiation and quick migration of the photo-generated charges to the interfaces. With Ru as a cocatalyst, the as-prepared 0.5 mol% Cu2+-doped ZnS nanospheres showed a high H 2 evolution rate of 1.03 mmol h-1, corresponding to a quantum efficiency of 26.2% at 425 nm. A hierarchical surface structure with a large surface area is considered crucial for the increased activity. Our work not only showed that the non-toxic metal chalcogenides achieve high efficiency but also provides a new concept of localized nano-solid-solution for photocatalytic applications. This journal is

Original languageEnglish
Pages (from-to)11533-11541
Number of pages9
JournalDalton Transactions
Volume43
Issue number30
DOIs
StatePublished - 14 Aug 2014

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