Structural Ordering in Ultrasmall Multicomponent Chalcogenides: The Case of Quaternary Cu‐Zn‐In‐Se Nanocrystals

Author:

Yarema Maksym1ORCID,Yazdani Nuri1,Yarema Olesya1,Đorđević Nikola1,Lin Weyde M. M.1,Bozyigit Deniz1,Volk Sebastian1,Moser Annina1,Turrini Alexandra2,Khomyakov Petr A.2,Nachtegaal Maarten3,Luisier Mathieu2,Wood Vanessa1

Affiliation:

1. Institute for Electronics Department of Information Technology and Electrical Engineering ETH Zurich Zurich 8092 Switzerland

2. Integrated Systems Laboratory Department of Information Technology and Electrical Engineering ETH Zurich Zurich 8092 Switzerland

3. Paul Scherrer Institute Villigen 5232 Switzerland

Abstract

AbstractThe compositional tunability of non‐isovalent multicomponent chalcogenide thin films and the extent of atomic ordering of their crystal structure is key to the performance of many modern technologies. In contrast, the effects of ordering are rarely studied for quantum‐confined materials, such as colloidal nanocrystals. In this paper, the possibilities around composition tunability and atomic ordering are explored in ultrasmall ternary and quaternary quantum dots, taking I‐III‐VI‐group Cu‐Zn‐In‐Se semiconductor as a case study. A quantitative synthesis for 3.3 nm quaternary chalcogenide nanocrystals is developed and shown that cation and cationic vacancy ordering can be achieved in these systems consisting of only 100s of atoms. Combining experiment and theoretical calculations, the relationship between structural ordering and optical properties of the materials are demonstrated. It is found that the arrangement and ordering of cationic sublattice plays an important role in the luminescent efficiency. Specifically, the concentration of Cu‐vacancy couples in the nanocrystal correlates with luminescence quantum yield, while structure ordering increases the occurrence of such optically active Cu‐vacancy units. On the flip side, the detrimental impact of cationic site disorder in I‐III‐VI nanocrystals can be mitigated by introducing a cation of intermediate valence, such as Zn (II).

Funder

European Research Council

Eidgenössische Technische Hochschule Zürich

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Publisher

Wiley

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