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Published on: December 5, 2025
Multimode Stimulus-Responsive Room Temperature Phosphorescence Achieved by Doping in 0D Hybrid Zinc Halides for
Yue Jiang1, Junjie Dong1, Min Chen1
1Collaborative Innovation Center for Advanced Organic Chemical Materials, Co-constructed by the Province and Ministry of Education Key Laboratory for the Synthesis and Application of Organic Functional Molecules, College of Chemistry and Chemical Engineering, Hubei University, Wuhan, Hubei Province430062, P. R. China.
Abstract:
Zero-dimensional hybrid metal halides (0D HMHs) are attractive candidates for room-temperature phosphorescence (RTP). However, most existing 0D HMHs emit a single color, making it challenging to achieve multicolor luminescence and multistimuli responsiveness while preserving persistent afterglow. In this work, we prepared the 0D hybrid zinc halide material [i-PrTPP]2ZnBr4. Benefiting from hydrogen-bond networks and the heavy atom effect, this material delivered long-lived cyan RTP. Its phosphorescence lifetime reaches 414.92 ms, and the photoluminescence quantum yield (PLQY) is 22.12%. We further doped the host with Sb3+ and Mn2+. The doped samples emit red fluorescence (PLQY = 51.92%) and green fluorescence (PLQY = 93.57%) separately, while the original cyan phosphorescence is retained. The Mn2+-doped material also shows an unusual mechanoluminescence (ML). Increasing the dopant concentration enhances the energy-transfer efficiency from the organic triplet (T1) state to the dopant ions, thereby enabling temporal modulation of the luminescence. Combining dual-mode emission, ML, and temporal regulation, these materials can be used for dynamic optical encoding and information encryption. This study offers a new route to develop multiresponsive luminescent materials and advanced dynamic anticounterfeiting techniques.

