Pressure‐Induced Dual‐Emission of Mn‐Based Metal Halides (C5H6N)2MnBr4

Author:

Chang Duanhua1,Chen Yaping1,Wang Lingrui1,Wang Jiaxiang1,Feng Youjia1,Yuan Yifang1,Gao Han1,Wu Min2,Fu Ruijing3,Yang Gang4,Wang Kai2,Guo Haizhong1ORCID

Affiliation:

1. Key Laboratory of Material Physics Ministry of Education School of Physics and Microelectronics Institution Zhengzhou University Zhengzhou 45001 P. R. China

2. Shandong Key Laboratory of Optical Communication Science and Technology School of Physics Science and Information Technology Liaocheng University Liaocheng 252059 P. R. China

3. College of Applied Physics and Materials Wuyi University Jiangmen 529020 P. R. China

4. College of Physics and Electronic Engineering Nanyang Normal University Nanyang 473061 P. R. China

Abstract

AbstractRegulating the crystal structure of metal halides is important to tune their photoluminescence (PL) or govern the potential emergence of diverse physical properties. Here, an exceptional PL phenomenon characterized by dual‐emission bands in the Mn‐based metal halides (C5H6N)2MnBr4 is observed through hydrostatic pressure measurements. The results have confirmed that the dual‐emission bands centered at ≈518 and 650 nm arise from isolated Mn2+ ions and super‐exchange within Mn2+–Mn2+ dimers, respectively. (C5H6N)2MnBr4 displays remarkable piezochromic luminescence, accompanied by a red shift in dual‐emission. This phenomenon can be attributed to the enhancement of crystal‐field splitting energy and the reduction of relaxation from the low‐energy excited state 4T1 to the ground state 6A1. Meanwhile, the dual‐emission exhibits an anomalous increase ≈1.5–3.9 GPa, which is associated with reduced nonradiative losses during energy migration due to the decreased distance between the luminescent centers as a consequence of lattice contraction. Moreover, (C5H6N)2MnBr4 undergoes a phase transition at ≈1.5 GPa, and upon decompression, the high‐pressure phase partially recovers. This study not only provides insights into the luminescent properties of Mn‐based metal halides but also presents a novel approach to the design of multifunctional photoluminescent materials.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Publisher

Wiley

Subject

Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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