Enabling white color tunability in complex 3D-printed composites by using lead-free self-trapped exciton 2D perovskite/carbon quantum dot inks

Abstract

The generation of stable white light emission using lead-free perovskites remains a huge challenge in the development of future display and lighting technologies, due to fast material deterioration and the decrease of the color quality. In this work, we report a combination of diverse types of 2D A2SnX4 (A = bulky cation, X = Br, I) perovskites exhibiting self-trapped exciton (STE) emission and blue luminescent carbon quantum dots (CQDs), with the purpose of generating A2SnX4/CQD inks with a broadband emission in the visible region and a tunable white light color. By varying the concentration of the 2D perovskite, the white emission of the mixtures is modulated to cool, neutral, and warm tonalities, with a PL quantum yield up to 45%. From the combinations, the PEA2SnI4/CQD-based ink shows the longest stability, due to suitable surface ligand passivation provided by the capping ligands covering the CQDs, compensating the defect sites in the perovskite. Then, by incorporating the PEA2SnI4/CQDs inks into an acrylate polymer matrix, the quenching of the PL component from the perovskite was restrained, being stable for >400 h under ambient conditions and at a relative humidity of ∼50%, and allowing the preparation of complex 3D-printed composites with stable white emission tonalities. This contribution offers an application of STE-based Sn-perovskites to facilitate the future fabrication of lead-free white-light optoelectronic devices.

Document Type

Article


Published version

Language

English

CDU Subject

Subject

Química

Pages

11 p.

Publisher

Royal Society of Chemistry

Grant Agreement Number

Ministry of Science and Innovation of Spain (MCIN/AEI/10.13039/501100011033) and the FEDER “Una manera de hacer Europa” under Projects She-LED (PID2021-122960OA-I00), Step-Up (TED2021-131600B-C31), project ELECTROVOLT (PID2022-139866NB-I00)

Generalitat Valenciana via the PROMETEO project Q-Solutions (CIPROM/2021/078)

European Union's Horizon 2020 research and the Ministry of Education, Youth and Sports of the Czech Republic for the financial support of XPS measurements using the CEMNAT infrastructure (projects LM2018103 and LM2023037)

S.-H. T. C. would like to thank the Spanish Ministry of Economy, Industry and Competitiveness (postdoctoral contract Juan de la Cierva Formación FJC2019-041835-I) and The National Science Centre-POLONES BIS 1 (DEC-2021/43/P/ST5/01780)

S. M. acknowledges financial support from MICINN (Spain) through the program Juan de la Cierva-Incorporatión (IJC2020-042618-I)

M. Z. acknowledges the financial support from the innovation programme under the Marie Skłodowska-Curie Individual Fellowships (GA no. 101026335)

V. S. thanks Generalitat Valenciana (CIDEGENT 2018/036) and UJI (B-2020-44)

T. L. and S. K. thank the Institute for the Promotion of Teaching Science and Technology (IPST) and Chiang Mai University

A. F. G.-R. acknowledges to ANID through the FONDECYT Iniciación Project (Grant no. 11240161)

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