Spectrally Tunable Zero-Dimensional Manganese–Antimony-Based Halide Solid-Solution Glasses for X-ray Imaging and Information Encryption

Abstract Despite significant advances in high-performance X-ray scintillators based on organic–inorganic hybrid metal halides (OIHMHs), realizing spectrally tunable luminescence within a single OIHMH system remains a formidable challenge for next-generation multifunctional photonics. Herein, a series of Mn/Sb solid-solution OIHMH (denoted as M-MxSy) glasses were synthesized via a melt-quenching method using methyltriphenylphosphonium (MTP) as the organic ligand. These solid-solution glasses exhibit excellent glass-forming ability, thermal stability, and high optical transparency (>85%) in the range of 500–800 nm. The stable coexistence of Mn2+ and Sb3+ luminescent centers is observed, which display distinct, excitation-dependent competitive emissions including a 528 nm green emission from Mn2+ under 450 nm excitation and a 648 nm orange-red emission from self-trapped excitons (STEs) of Sb3+ under 396 nm excitation. Conversely, X-ray excitation can simultaneously activate both centers, enabling comprehensive color tuning depending on the Mn/Sb ratio. Notably, the optimized M-M3S1 glass demonstrates superior scintillation performance, with a high light yield of ∼35,300 photons M eV–1 and a spatial resolution of 20 lp mm–1. By leveraging these differentiated multimode luminescent responses, a high-quality X-ray imaging and a multilevel information encryption scheme were developed, highlighting the synergistic potential of these materials for advanced radiation imaging and anticounterfeiting applications.

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Publication Details

Journal
Chemistry of Materials
Published
2026-10-08
DOI
https://doi.org/10.1021/acs.chemmater.6c01437
Primary Topic
Radiation Detection and Scintillator Technologies
Type
article
Field-Weighted Citation Impact
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article

Spectrally Tunable Zero-Dimensional Manganese–Antimony-Based Halide Solid-Solution Glasses for X-ray Imaging and Information Encryption

Ligang Xu, Runfeng Chen, Libo Li, Wenzhen Lv et al.
Chemistry of Materials
Radiation Detection and Scintillator Technologies
article

Spectrally Tunable Zero-Dimensional Manganese–Antimony-Based Halide Solid-Solution Glasses for X-ray Imaging and Information Encryption

Ligang Xu, Runfeng Chen, Libo Li, Wenzhen Lv, Yebo Cai, Weijia Wei, Xuyan Wang, Guangbao Wu, Guangcheng Cui, Mingtai Chen
article en

Abstract

Abstract Despite significant advances in high-performance X-ray scintillators based on organic–inorganic hybrid metal halides (OIHMHs), realizing spectrally tunable luminescence within a single OIHMH system remains a formidable challenge for next-generation multifunctional photonics. Herein, a series of Mn/Sb solid-solution OIHMH (denoted as M-MxSy) glasses were synthesized via a melt-quenching method using methyltriphenylphosphonium (MTP) as the organic ligand. These solid-solution glasses exhibit excellent glass-forming ability, thermal stability, and high optical transparency (>85%) in the range of 500–800 nm. The stable coexistence of Mn2+ and Sb3+ luminescent centers is observed, which display distinct, excitation-dependent competitive emissions including a 528 nm green emission from Mn2+ under 450 nm excitation and a 648 nm orange-red emission from self-trapped excitons (STEs) of Sb3+ under 396 nm excitation. Conversely, X-ray excitation can simultaneously activate both centers, enabling comprehensive color tuning depending on the Mn/Sb ratio. Notably, the optimized M-M3S1 glass demonstrates superior scintillation performance, with a high light yield of ∼35,300 photons M eV–1 and a spatial resolution of 20 lp mm–1. By leveraging these differentiated multimode luminescent responses, a high-quality X-ray imaging and a multilevel information encryption scheme were developed, highlighting the synergistic potential of these materials for advanced radiation imaging and anticounterfeiting applications.

Chemistry of Materials
Jiangsu University (CN), National University of Singapore (SG), Nanjing University of Posts and Telecommunications (CN)
Openalex Percentile: Top 13%
Radiation Detection and Scintillator Technologies
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