Boosting Stability of Hybrid Manganese Bromide Microcrystals by Zn2+ Substitution for Wide-Gamut Displays

Hybrid manganese bromides have emerged as promising lead-free narrow-band green emitters for wide-gamut displays, but their practical application is still limited by insufficient operational stability. Herein, Zn2+ substitution is employed to enhance the stability of tetraethylammonium manganese bromide (TEA2MnBr4) microcrystals (MCs) synthesized via an ultrafast self-assembly method. With increasing Zn2+ contents, the photoluminescence intensity of TEA2Mn1−xZnxBr4 MCs gradually decreases, while the x = 0.10 MCs still exhibit efficient narrow-band green emission at 518 nm and a high photoluminescence efficiency of about 85% under blue excitation. More importantly, Zn2+ incorporation substantially enhances the storage and thermal stability, as well as operational stability of the corresponding green LED devices (retaining above 99% of initial luminous efficacy after 160 h continuous operation at 20 mA). Finally, a white LED fabricated using the x = 0.10 MCs achieves a high luminous efficiency of about 136 lm/W and covers about 112% of the National Television System Committee 1931 color gamut. These results demonstrate that Zn2+ substitution is an effective strategy for stabilizing hybrid manganese bromide emitters and highlight their potential for lead-free wide-gamut display applications.

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Journal
Materials
Published
2026-08-27
DOI
https://doi.org/10.3390/ma19173650
Primary Topic
Perovskite Materials and Applications
Type
article
Field-Weighted Citation Impact
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article

Boosting Stability of Hybrid Manganese Bromide Microcrystals by Zn2+ Substitution for Wide-Gamut Displays

Huidong Tang, Yulu He, Qing Hu, Yanqiao Xu et al.
Materials
Perovskite Materials and Applications
article

Boosting Stability of Hybrid Manganese Bromide Microcrystals by Zn2+ Substitution for Wide-Gamut Displays

Huidong Tang, Yulu He, Qing Hu, Yanqiao Xu, Xin Xiong, Xinyi Wen, Simeng Wu, Zhi Wu, Pengcheng Jiang
article en

Abstract

Hybrid manganese bromides have emerged as promising lead-free narrow-band green emitters for wide-gamut displays, but their practical application is still limited by insufficient operational stability. Herein, Zn2+ substitution is employed to enhance the stability of tetraethylammonium manganese bromide (TEA2MnBr4) microcrystals (MCs) synthesized via an ultrafast self-assembly method. With increasing Zn2+ contents, the photoluminescence intensity of TEA2Mn1−xZnxBr4 MCs gradually decreases, while the x = 0.10 MCs still exhibit efficient narrow-band green emission at 518 nm and a high photoluminescence efficiency of about 85% under blue excitation. More importantly, Zn2+ incorporation substantially enhances the storage and thermal stability, as well as operational stability of the corresponding green LED devices (retaining above 99% of initial luminous efficacy after 160 h continuous operation at 20 mA). Finally, a white LED fabricated using the x = 0.10 MCs achieves a high luminous efficiency of about 136 lm/W and covers about 112% of the National Television System Committee 1931 color gamut. These results demonstrate that Zn2+ substitution is an effective strategy for stabilizing hybrid manganese bromide emitters and highlight their potential for lead-free wide-gamut display applications.

MaterialsVol. 19(17)
Jingdezhen Ceramic Institute (CN), Hunan Institute of Technology (CN)
National Natural Science Foundation of China, Natural Science Foundation of Jiangxi Province, Natural Science Foundation of Hunan Province
Affordable and clean energy
Openalex Percentile: Top 19%
Perovskite Materials and Applications
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