Hydrothermal Disturbance‐Driven Coordination Assembly of Supramolecular Glasses With Multi‐Excitation‐Tunable Afterglow

The bottom-up fabrication of transparent bulk glasses remains a significant challenge, particularly due to decomposition of molecular components before melting. Supramolecular glasses (SMGs), built from non-covalently cross-linked networks with favorable optical properties, are generally inaccessible via conventional melt-quenching. Solvent evaporation methods, in turn, tend to produce disordered powders rather than uniform macroscopic glassy solids. Here, we present a hydrothermal disturbance strategy to synthesize a family of structural water-containing SMGs based on indium-triazole coordination complexes. These monolithic SMGs display high transparency, mechanical robustness, and excitation-dependent ultralong room-temperature phosphorescence, with emission colors tunable from blue to yellow. These characteristics originate from dense metal-ligand coordination frameworks reinforced by hydrogen bonding. Doping with L-tyrosine further enhances the phosphorescent performance, yielding a prolonged blue afterglow (204.6 ms), while also introducing chiroptical functionality. This study thus establishes a new coordination-driven strategy for SMG formation and introduces a class of multifunctional afterglow glasses with promising applications in UV sensing and secure optical encryption.

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Publication Details

Journal
Angewandte Chemie International Edition
Published
2026-08-25
DOI
https://doi.org/10.1002/anie.7295217
Primary Topic
Metal-Organic Frameworks: Synthesis and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Hydrothermal Disturbance‐Driven Coordination Assembly of Supramolecular Glasses With Multi‐Excitation‐Tunable Afterglow

Meiqi Dai, Chang Xing, Yu‐Juan Ma, Dongpeng Yan et al.
Angewandte Chemie International Edition
Metal-Organic Frameworks: Synthesis and Applications
article

Hydrothermal Disturbance‐Driven Coordination Assembly of Supramolecular Glasses With Multi‐Excitation‐Tunable Afterglow

Meiqi Dai, Chang Xing, Yu‐Juan Ma, Dongpeng Yan, Tianhong Chen, Fei Nie, Yumin Liu, Jiayi Guo, Kangjing Li
article en

Abstract

The bottom-up fabrication of transparent bulk glasses remains a significant challenge, particularly due to decomposition of molecular components before melting. Supramolecular glasses (SMGs), built from non-covalently cross-linked networks with favorable optical properties, are generally inaccessible via conventional melt-quenching. Solvent evaporation methods, in turn, tend to produce disordered powders rather than uniform macroscopic glassy solids. Here, we present a hydrothermal disturbance strategy to synthesize a family of structural water-containing SMGs based on indium-triazole coordination complexes. These monolithic SMGs display high transparency, mechanical robustness, and excitation-dependent ultralong room-temperature phosphorescence, with emission colors tunable from blue to yellow. These characteristics originate from dense metal-ligand coordination frameworks reinforced by hydrogen bonding. Doping with L-tyrosine further enhances the phosphorescent performance, yielding a prolonged blue afterglow (204.6 ms), while also introducing chiroptical functionality. This study thus establishes a new coordination-driven strategy for SMG formation and introduces a class of multifunctional afterglow glasses with promising applications in UV sensing and secure optical encryption.

Angewandte Chemie International Edition
Beijing Normal University (CN)
National Natural Science Foundation of China, China Postdoctoral Science Foundation, Natural Science Foundation of Beijing Municipality, Beijing Nova Program, Fundamental Research Funds for the Central Universities
Openalex Percentile: Top 23%
Metal-Organic Frameworks: Synthesis and Applications
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