Photochromic Hybrid Organic‐Inorganic Metal Halide Glasses

ABSTRACT Melt‐quenching provides an effective route to glass formation while reconfiguring the atomic and electronic structures of materials. Despite the accompanying changes in mechanical and optical properties, how the resulting disorder can be exploited to enable functionalities beyond those of crystalline phases remains insufficiently understood. Here, we show that a hybrid organic‐inorganic metal halide (OIMH) glass, g‐4‐MeOBPP 2 ZnBr 4 (4‐MeOBPP + = 4‐methoxybenzyltriphenylphosphonium), exploits vitrification‐induced disorder to deliver a sub‐second UV‐triggered photochromic response absent in its crystalline counterpart, together with pronounced x‐ray‐induced photochromism. Upon UV irradiation, the initially colorless glass rapidly turns red, reaching 50% of the saturation absorbance within 0.5 s. Reverse Monte Carlo modeling combined with time‐dependent density functional theory indicates that medium‐range structural disorder generates locally perturbed environments that can serve as photoactive motifs. These motifs can host energetically proximate singlet and triplet states (Δ E ST ∼ 0.02 eV), favoring intersystem crossing and intermolecular charge separation between adjacent cations. Guided by this design rationale, two glass analogs, g‐4‐MeOBPP 2 CdBr 4 and g‐3‐MeOBPP 2 ZnBr 4 (3‐MeOBPP + = 3‐methoxybenzyltriphenylphosphonium cation), are also found to exhibit vitrification‐induced photochromism. These findings identify medium‐range disorder as an effective design lever in OIMH molecular glasses, providing a conceptual framework for creating turn‐on optical responses in disordered materials.

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Publication Details

Journal
Angewandte Chemie
Published
2026-09-14
DOI
https://doi.org/10.1002/ange.1298188
Primary Topic
Luminescence and Fluorescent Materials
Type
article
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article

Photochromic Hybrid Organic‐Inorganic Metal Halide Glasses

Wen‐Long Xue, Sebastian Henke, Martin T. Dove, Zi-Ying Li et al.
Angewandte Chemie
Luminescence and Fluorescent Materials
article

Photochromic Hybrid Organic‐Inorganic Metal Halide Glasses

Wen‐Long Xue, Sebastian Henke, Martin T. Dove, Zi-Ying Li, Xian‐He Bu, Jingwei Hou, Wei Li, Rui Feng
article en

Abstract

ABSTRACT Melt‐quenching provides an effective route to glass formation while reconfiguring the atomic and electronic structures of materials. Despite the accompanying changes in mechanical and optical properties, how the resulting disorder can be exploited to enable functionalities beyond those of crystalline phases remains insufficiently understood. Here, we show that a hybrid organic‐inorganic metal halide (OIMH) glass, g‐4‐MeOBPP 2 ZnBr 4 (4‐MeOBPP + = 4‐methoxybenzyltriphenylphosphonium), exploits vitrification‐induced disorder to deliver a sub‐second UV‐triggered photochromic response absent in its crystalline counterpart, together with pronounced x‐ray‐induced photochromism. Upon UV irradiation, the initially colorless glass rapidly turns red, reaching 50% of the saturation absorbance within 0.5 s. Reverse Monte Carlo modeling combined with time‐dependent density functional theory indicates that medium‐range structural disorder generates locally perturbed environments that can serve as photoactive motifs. These motifs can host energetically proximate singlet and triplet states (Δ E ST ∼ 0.02 eV), favoring intersystem crossing and intermolecular charge separation between adjacent cations. Guided by this design rationale, two glass analogs, g‐4‐MeOBPP 2 CdBr 4 and g‐3‐MeOBPP 2 ZnBr 4 (3‐MeOBPP + = 3‐methoxybenzyltriphenylphosphonium cation), are also found to exhibit vitrification‐induced photochromism. These findings identify medium‐range disorder as an effective design lever in OIMH molecular glasses, providing a conceptual framework for creating turn‐on optical responses in disordered materials.

Angewandte Chemie
Tianjin University of Technology (CN), The University of Queensland (AU), Queen Mary University of London (GB), Guizhou University (CN), TU Dortmund University (DE), Nankai University (CN), Sichuan University (CN)
Openalex Percentile: Top 24%
Luminescence and Fluorescent Materials
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