Journal of Non-Crystalline Solids· 2026Q2
Role of Na in determining the properties of sodic glasses
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- Q2SCImago
- 2026year
Short summary
Molecular Dynamics simulations show Na-O bonds in Na4SiO4 glass mimic sodic crystals, driven by SiO4 tetrahedral collapse around Na (electrostriction), with bond distances peaking at ~2.38Å and ~4.8Å.
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Key points
- MD simulations of Na4SiO4 glass show Na-O bond distances and angles similar to sodic crystals.
- Na polyhedra are stabilized by SiO4 tetrahedral collapse around Na, driven by electrostriction.
- Na-O bond distance distribution in glass shows two maxima at ~2.38Å and ~4.8Å.
- Five-fold coordinated Na and synchronized Na-O/Si-O stretches promote Na migration.
AI-generated from the title and abstract; the full text is not read.
Abstract
Molecular Dynamics (MD) simulation of Na 4 SiO 4 glass yields Na-O bond distances, and O-Na-O angles remarkably similar to those in sodic crystals, regardless of their compositions. Na polyhedra in both phases are stabilized by a common, formative mechanism, collapse of SiO 4 tetrahedra around Na, driven by Na-O electrostatic attraction (electrostriction). Na-O bond distance distribution in the simulated glass displays two maxima at ∼2.38Å and ∼4.8Å. The first Na-O coordination sphere is strongly skewed with a cut-off distance of ∼3.25Å. At this extreme, Na-O bonds are highly ionic. These results provide an energetics explanation for Na migration in glasses. Five-fold coordinated Na, combined with synchronicity of Na-O and Si-O symmetric stretches, promote Na migration. Density functional theoretical (DFT) calculations on Na-Si-O molecular species reveal that Na bonded to SiO 4 tetrahedral edges is more stable than apex- or face-bonded Na. Also, Si-O-Si linkages are stabilized by having Na bonded to bridging oxygen.
The authors' abstract, as published at the source. Journal of Non-Crystalline Solids, 2026 · DOI ↗
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