Aug 2026· Nature Materials· 2 citations· 46 references
Medicine
Abstract
Melt-quenched glasses derived from metal-organic frameworks (MOFs) combine the processability of glasses with the modularity and microporosity of MOFs, yet remain structurally and functionally less diverse than crystalline analogues. Here we show that the chelating ligand 1,10-phenanthroline acts as an organic flux that lowers the glass transition temperature of selected MOFs and induces ligand exchange during melting, thereby enabling control over local coordination and global topology in MOF glasses. In Co2+-based systems, phenanthroline coordinates to the metal nodes, increases the coordination number and reduces network connectivity by forming terminal ligands. This coordination sphere engineering affords a level of structural control not readily achievable in conventional inorganic or organic glasses. Crucially, the lower processing temperature suppresses thermal decomposition, enabling the synthesis of Co2+-based MOF glasses free of magnetic impurities. These glasses exhibit antiferromagnetic coupling and represent unique examples of magnetic MOF glasses formed by melt quenching. Finally, we extend the strategy to otherwise non-meltable carboxylate-based MOFs, establishing flux-mediated ligand exchange as a versatile route to hybrid glasses with tailored connectivity and properties.
Metal-organic framework (MOF) glasses have distinguished themselves as an emerging class of amorphous coordination materials that combine the chemical tunability of MOFs with the processability of glassy solids. Unlike crystalline MOFs, where ion migration is dominated by periodic pore architectures, ion conduction in...
Glasses made from organic-inorganic hybrid perovskites are emerging non-crystalline semiconducting materials whose versatile composition and exceptional processability allow for manifold applications. The current melt-quenching approaches are compatible to only few perovskite crystals, as most undergo irreversible deco...
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 m...
Fei Nie, Tianhong Chen, Yumin Liu et al.· Angewandte Chemie· 0 citations
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 ins...
Glasses are central to modern science and technology, yet conventional silicate, organic polymer, and metallic glasses share persistent limitations: energy-intensive processing and poor recyclability. To address these challenges, we report the large-scale synthesis of supramolecular glasses (SGs) from urea (UR) and ZnC...
Fei Nie, Jia-Yi Guo, Dong-Peng Yan· Advances in Materials· 0 citations
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