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Updated: May 4, 2026

Fabrication of White Light-emitting Electrochemical Cells with Stable Emission from Exciplexes
Published on: November 15, 2016
A Polar Zinc-Based Water-Resistant White-Light Emission Organic Inorganic Hybrid Metal Halide
Yu-Yin Wang1, Ya-Jie Hu1, Rui-Yu Sun1
1School of Chemistry, Chemical Engineering and Materials, Jining University, Qufu, Shandong 273155, P. R. China.
Abstract:
Developing lead-free hybrid metal halides with stable and efficient white-light emission remains a critical challenge for next-generation optoelectronics. Here, we report a polar zinc-based organic-inorganic hybrid halide, [EMPA]2Zn3Br12 (EMPA = 5-[(4-ethylpiperazin-1-yl)methyl]pyridin-2-amine), which exhibits broadband white-light emission with a high color rendering index of 90 and high photoluminescence quantum yield of 43.9%. The material shows nonlinear optical properties with a measurable second-harmonic generation response. Unlike conventional hybrid halides, [EMPA]2Zn3Br12 demonstrates exceptional stability, retaining its structure and luminescent properties after 60 days of immersion in water and prolonged exposure to UV irradiation. Temperature-dependent photoluminescence measurements reveal that the material maintains its white-light emission from room temperature down to 260 K. Density functional theory calculations suggest that the broadband emission originates from multiple self-trapped exciton states, facilitated by Jahn-Teller distortions in the [ZnBr4]2- tetrahedra. Furthermore, a white-light-emitting diode fabricated using [EMPA]2Zn3Br12 as a single component white light emitter, demonstrating its potential for solid-state lighting. This study highlights [EMPA]2Zn3Br12 as a promising lead-free alternative for environmentally friendly high-performance white-light-emitting and optoelectronic applications.
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