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Updated: Jan 14, 2026

Hyperspectral Imaging as a Tool to Study Optical Anisotropy in Lanthanide-Based Molecular Single Crystals
Published on: April 14, 2020
Near-unity and narrow green emission from a manganese(ii) bromide for efficient WLEDs and 3D X-ray imaging
Mengzhu Wang1, Xiaolong Li1, Siwen Zou1
1State Key Laboratory of Flexible Electronics (LoFE), Jiangsu Key Laboratory of Smart Biomaterials and Theranostic Technology, Institute of Advanced Materials (IAM), College of Electronic and Optical Engineering, College of Flexible Electronics (Future Technology), Nanjing University of Posts and Telecommunications (NUPT) 9 Wenyuan Road Nanjing 210023 Jiangsu China iamqzhao@njupt.edu.cn iamyma@njupt.edu.cn.
Abstract:
Developing efficient, narrow-band, and environmentally friendly emitters is crucial for advanced optoelectronics. Herein, we report a zero-dimensional (0D) organic-inorganic hybrid manganese(ii) halide, (TPS)2MnBr4 (TPS = triphenylsulfonium), engineered via cation selection. This material simultaneously achieves near-unity photoluminescence quantum yield (PLQY ≈ 99.6%) and exceptionally narrow green emission (FWHM = 40 nm) for a Mn2+ emitter. Structural analysis and theoretical calculations reveal that the rigid TPS+ cation induces a specific crystal packing that minimizes [MnBr4]2- tetrahedral distortion through weaker hydrogen bonding interactions. This structural optimization leads to suppressed electron-phonon coupling, explaining the narrow bandwidth while maintaining high efficiency. These outstanding properties enable high-performance white light-emitting diodes (WLEDs) and 3D X-ray Imaging. This work demonstrated targeted cation engineering as a powerful strategy to overcome intrinsic Mn2+ limitations and presents a high-performance, eco-friendly material for multifunctional optoelectronic applications.

