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Selective Tracking of Charge Carrier Dynamics in CuInS2 Quantum Dots

Lookup NU author(s): Dr Luke Watson, Professor Thomas PenfoldORCiD

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This work is licensed under a Creative Commons Attribution 4.0 International License (CC BY 4.0).


Abstract

CuInS2 quantum dots have been studied in a broad range of applications, but despite this, the fine details of their charge carrier dynamics remain a subject of intense debate. Two of the most relevant points of discussion are the hole dynamics and the influence of Cu:In synthesis stoichiometry. It has been proposed that Cu-deficiency leads to the formation of Cu2+, affecting the localization of holes into Cu defects. Importantly, it is precisely these confined hole states that are used to explain the interesting photoluminescence properties of CuInS2 quantum dots. We use static X-ray spectroscopy to show no evidence for a measurable amount of native Cu2+ states in Cu-deficient samples (above 20%). Instead, the improved properties of these samples are explained by an increase of crystallinity, reducing the concentration of mid-gap states. Furthermore, to understand the charge carrier dynamics, herein, we employ ultrafast optical transient absorption and fluorescence up-conversion spectroscopies in combination with ultrafast X-ray absorption spectroscopy using a hard X-ray free electron laser. We demonstrate that in nonpassivated samples, holes are transferred from Cu atoms on subpicosecond time scales. Finally, we observe that Cu-deficient samples are more robust against photothermal effects at higher laser fluences. This is not the case for the Cu-rich sample, where heating effects on the structure are directly observed.


Publication metadata

Author(s): Burgos-Caminal A, Vale BRC, Fonseca AFV, Collet EPP, Hidalgo JF, García L, Watson L, Borrell-Grueiro O, Corrales ME, Choi TK, Katayama T, Fan D, Vega-Mayoral V, Garcia-Orrit S, Nozawa S, Penfold TJ, Cabanillas-González J, Adachi SI, Bañares J, Nogueira AF, Padilha LA, Schiavon MA, Gawelda W

Publication type: Article

Publication status: Published

Journal: ACS Nano

Year: 2025

Volume: 19

Issue: 24

Pages: 21950–21961

Online publication date: 12/06/2025

Acceptance date: 02/06/2025

Date deposited: 16/06/2025

ISSN (print): 1936-0851

ISSN (electronic): 1936-086X

Publisher: American Chemical Society

URL: https://doi.org/10.1021/acsnano.4c18469

DOI: 10.1021/acsnano.4c18469

Data Access Statement: The data that support the findings in this study are openly available at the IMDEA Nanoscience repository.


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Funding

Funder referenceFunder name
European Union’s Horizon 2020 research and innovation programme
Marie Sklodowska-Curie agreement No. 101034431

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