Boosting Green Emission in Mn(II)-Doped Cs3ZnCl5 by Introducing an Energy Transfer Mediator

Abstract

In this research, we present an innovative, environmentally friendly, and cost-effective alcohothermal method for synthesizing Mn2+ and Mn2+-Cu+ doped 0D Cs3ZnCl5, a green luminescent material, marking the first time this approach has been reported. An exhaustive analysis of the luminescence properties of both undoped and doped Cs3ZnCl5 was conducted, with a particular emphasis on the energy transfer mechanisms in the Mn2+ monodoped and Mn2+-Cu+ codoped systems. Our results demonstrate the successful construction of an efficient energy transfer pathway that significantly enhances the luminescence efficiency of Cs3ZnCl5: Mn2+. Specifically, the photoluminescence quantum yield of Mn2+ within the Cs3ZnCl5 matrix has been improved from 51.6% to 71.1%, thanks to the Cu+ codopant acting as an effective energy transfer mediator. We also propose a mechanism for the luminescence and energy transfer phenomena observed in the Mn2+-Cu+ codoped Cs3ZnCl5 system. Furthermore, to assess the practical applicability of the synthesized materials, their structural and photoluminescence stability were evaluated. In essence, our study presents a promising solution to current challenges in the synthesis of advanced luminescent materials and opens up new possibilities for harnessing the potential of Mn2+-activated 0D metal halides in optoelectronic applications.

Article information

Article type
Paper
Submitted
20 May 2024
Accepted
03 Jul 2024
First published
04 Jul 2024

J. Mater. Chem. C, 2024, Accepted Manuscript

Boosting Green Emission in Mn(II)-Doped Cs3ZnCl5 by Introducing an Energy Transfer Mediator

T. Zhao, Y. Zhang, L. Wu, Q. Zhong, W. Xie, B. Li, D. Geng and H. Zeng, J. Mater. Chem. C, 2024, Accepted Manuscript , DOI: 10.1039/D4TC02076F

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