Realizing Near‐Unity Photoluminescence Quantum Yield in Metal Halide RbCdCl3:Mn2+ Crystals via Phase Transformation Engineering

Author:

Song Yan12,Jia Zhen1,Gong Pifu3,Wang Zhigang1,Yuan Changchun2,Chen Mingxing4,Zhao Jing5,Li Xinhui1,Zhang Yanjiao1,Xia Mingjun3ORCID

Affiliation:

1. College of Chemistry and Chemical Engineering Shandong Provincial Key Laboratory of Monocrystalline Silicon Semiconductor Materials and Technology Dezhou University Dezhou 253023 China

2. School of Chemistry and Chemical Engineering Technical Institute of Physics and Chemistry North University of China Taiyuan 038507 China

3. Beijing Center for Crystal Research and Development, Key Laboratory of Functional Crystals and Laser Technology, Technical Institute of Physics and Chemistry Chinese Academy of Sciences Beijing 100190 China

4. College of Chemistry and Molecular Engineering Analytical Instrumentation Center Peking University Beijing 100871 China

5. The Beijing Municipal Key Laboratory of New Energy Materials and Technologies School of Materials Sciences and Engineering University of Science and Technology Beijing Beijing 100083 China

Abstract

AbstractAll‐inorganic metal halides have merged as auspicious materials for optoelectronic applications due to their predominant tunable and controlled photoluminescence (PL) properties. Despite substantial efforts and advances in the development of these all‐inorganic metal halides, considerable long‐term challenges remain to be solved to realize cutting‐edge material performances. Here, an all‐inorganic metal halide RbCdCl3, featuring a reversible structural phase transformation from non‐perovskite (orthorhombic‐phase) to perovskite (tetragonal‐phase) structure is reported. Intriguingly, via phase transformation regulation engineering, a near‐unity photoluminescence quantum yield (PLQY) along with large Stokes shift (275 nm) and long decay lifetime (14.69 ms) is achieved in RbCdCl3:Mn2+ thermochromic fluorescent materials, comparing with the pristine non‐pervoskite structure with an initial PLQY of 3.1%. Moreover, the underlying PL switching mechanisms are systematically elucidated by the in situ optical characterizations and the first‐principles calculations. This work demonstrates a thermochromic fluorescent anti‐counterfeiting material based on the tunable and reversible photoluminescence switching and also provides a phase structure engineering in metal halides to broaden their manifold applications in optoelectronic fields.

Funder

Natural Science Foundation of Shandong Province

Publisher

Wiley

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