Molecular Confinement Engineering of Mn(II) Halide Scintillators for High-Resolution X-ray Imaging and Three-Dimensional Computed Tomography

Abstract Metal halide scintillators hold great promise for next-generation X-ray imaging, yet manganese(II)-based halide scintillators suffer from structural instability and thermally activated nonradiative losses arising from their soft lattice nature. Here, we develop a molecular confinement engineering strategy by integrating zero-dimensional CPT2MnBr4 emitters into a cross-linked ionogel network. This strategy simultaneously suppresses moisture-induced degradation and weakens electron–phonon coupling of the embedded emitters. The resulting Mn-IG scintillator exhibits substantially enhanced environmental durability and thermal stability, a high light yield of 19,777 photons Me V–1, and a spatial resolution of 12.7 lp mm–1. Benefiting from high optical transparency and suppressed photon scattering, the Mn-IG scintillator enables high-fidelity X-ray radiography and three-dimensional computed tomography reconstruction. This work establishes molecular confinement engineering as a general strategy for regulating photophysical processes in metal halide scintillators and advancing durable high-resolution X-ray imaging technologies.

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Publication Details

Journal
Inorganic Chemistry
Published
2026-10-09
DOI
https://doi.org/10.1021/acs.inorgchem.6c04519
Primary Topic
Radiation Detection and Scintillator Technologies
Type
article
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article

Molecular Confinement Engineering of Mn(II) Halide Scintillators for High-Resolution X-ray Imaging and Three-Dimensional Computed Tomography

Chuanhao Hu, Jiani Wang, Xue Yu, Feixiang Xiong et al.
Inorganic Chemistry
Radiation Detection and Scintillator Technologies
article

Molecular Confinement Engineering of Mn(II) Halide Scintillators for High-Resolution X-ray Imaging and Three-Dimensional Computed Tomography

Chuanhao Hu, Jiani Wang, Xue Yu, Feixiang Xiong, Di Zhang, Ting Wang, Yi Yao, Chunya Chen, Yating Sun
article en

Abstract

Abstract Metal halide scintillators hold great promise for next-generation X-ray imaging, yet manganese(II)-based halide scintillators suffer from structural instability and thermally activated nonradiative losses arising from their soft lattice nature. Here, we develop a molecular confinement engineering strategy by integrating zero-dimensional CPT2MnBr4 emitters into a cross-linked ionogel network. This strategy simultaneously suppresses moisture-induced degradation and weakens electron–phonon coupling of the embedded emitters. The resulting Mn-IG scintillator exhibits substantially enhanced environmental durability and thermal stability, a high light yield of 19,777 photons Me V–1, and a spatial resolution of 12.7 lp mm–1. Benefiting from high optical transparency and suppressed photon scattering, the Mn-IG scintillator enables high-fidelity X-ray radiography and three-dimensional computed tomography reconstruction. This work establishes molecular confinement engineering as a general strategy for regulating photophysical processes in metal halide scintillators and advancing durable high-resolution X-ray imaging technologies.

Inorganic Chemistry
Chengdu University of Technology (CN), Chengdu University (CN)
Openalex Percentile: Top 13%
Radiation Detection and Scintillator Technologies
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Molecular Confinement Engineering of Mn(II) Halide Scintillators for High-Resolution X-ray Imaging and Three-Dimensional Computed Tomography — Chuanhao Hu, Jiani Wang, et al. · Inorganic Chemistry (2026) | TGRS Research Map | TGRS