4.8 Article

Alloyed Copper Chalcogenide Nanoplatelets via Partial Cation Exchange Reactions

Journal

ACS NANO
Volume 8, Issue 8, Pages 8407-8418

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/nn502906z

Keywords

nanocrystals; copper chalcogenides; alloys; cation exchange; band gap engineering; cyclic voltammetry

Funding

  1. European Community [301100]
  2. FP7 [614897, 284486]

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We report the synthesis of alloyed quaternary and quinary nanocrystals based on copper chalcogenides, namely, copper zinc selenide-sulfide (CZSeS), copper tin selenide-sulfide (CTSeS), and copper zinc tin selenide-sulfide (CZTSeS) nanoplatelets (NPLs) (similar to 20 nm wide) with tunable chemical composition. Our synthesis scheme consisted of two facile steps: Le, the preparation of copper selenide-sulfide (Cu2-xSeyS1-y) platelet shaped nanocrystals via the colloidal route, followed by an in situ cation exchange reaction. During the latter step, the cation exchange proceeded through a partial replacement of copper ions by zinc or/and tin cations, yielding homogeneously alloyed nanocrystals with platelet shape. Overall, the chemical composition of the alloyed nanocrystals can easily be controlled by the amount of precursors that contain cations of interest (e.g., Zn, Sn) to be incorporated/alloyed. We have also optimized the reaction conditions that allow a complete preservation of the size, morphology, and crystal structure as that of the starting Cu2-xSeyS1-y NPLs. The alloyed NPLs were characterized by optical spectroscopy (UV-vis-NIR) and cyclic voltammetry (CV), which demonstrated tunability of their light absorption characteristics as well as their electrochemical band gaps.

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