A library of polytypic copper-based quaternary sulfide nanocrystals enables efficient solar-to-hydrogen conversion

多种铜基季铵化物纳米晶体的库能够实现高效的太阳能制氢转化

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Abstract

Designing polytypic homojunction is an efficient way to regulate photogenerated electrons and holes, thereafter bringing desired physical and chemical properties and being attractive photocatalysts for solar-to-hydrogen conversion. However, the high-yield and controllable synthesis of well-defined polytypes especially for multinary chalcogenide - the fundamental factor favoring highly efficient solar-to-hydrogen conversion - has yet to be achieved. Here, we report a general colloidal method to construct a library of polytypic copper-based quaternary sulfide nanocrystals, including Cu(2)ZnSnS(4), Cu(2)CdSnS(4), Cu(2)CoSnS(4), Cu(2)MnSnS(4), Cu(2)FeSnS(4), Cu(3)InSnS(5) and Cu(3)GaSnS(5), which can be synthesized by selective epitaxial growth of kesterite phase on wurtzite structure. Besides, this colloidal method allows the precise controlling of the homojunction number corresponding to the photocatalytic performance. The single-homojunction and double-homojunction polytypic Cu(2)ZnSnS(4) nanocrystal photocatalysts show 2.8-fold and 3.9-fold improvement in photocatalytic hydrogen evolution rates relative to the kesterite nanocrystals, respectively. This homojunction existed in the polytypic structure opens another way to engineer photocatalysts.

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