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April 18, 20260 citationsOpen Access

Strengthening Potentials of Lithium‐Doped Soda–Lime–Silicate Glasses Through Surface Crystallization of Quartz‐ss

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FSFabian StoelzelTGThorsten Gerdes

Key Points

  • This study aims to understand how surface crystallization can enhance the properties of lithium-doped soda-lime-silicate glasses.
  • Analyzed surface crystallization of melt-prepared soda-lime-silicate glasses with varying Al2O3 content.
  • Investigated the effects of lithium doping in place of sodium.
  • Evaluated the role of ZnO and MgO in crystallization.
  • Applied a model to predict in-plane stresses in the crystallized surface.
  • Formed a compressive layer in glasses with low Al2O3 content across the crystalline range.
  • Observed cell parameters of Qz-ss were similar to the Li2O─Al2O3─SiO2 system.
  • Demonstrated potential for improving glass mechanical properties through surface crystallization.

Abstract

The formation of a crystallized surface layer, having a lower coefficient of thermal expansion (CTE) than the parent glass, can be exploited to place the glass surface under compression during cooling from crystallization temperature and hence improve mechanical properties. In our study, we focused on the understanding of the compositional dependency of the surface crystallization of quartz solid solutions (Qz‐ss) with potentially low CTE. Specifically, we investigated the crystallization of melt‐prepared soda–lime–silicate glasses with variable Al2O3 content that were doped with lithium in exchange for sodium. Further, the role of ZnO and MgO in the crystallization was evaluated. Despite rather complex glass compositions, the observed cell parameters of the obtained Qz‐ss are close to the corresponding ternary Li2O─Al2O3─SiO2 (LAS) system. Further, a simple model was applied to predict the in‐plane stresses in the surface. For modeled compositions down to 5.5 mol% Al2O3, formation of a compressive layer for the complete range of the crystalline content can be observed. Our findings illustrate the potential of strengthening glasses through surface crystallization as an alternative to thermal‐ and chemical strengthening to make glass‐packaging more weight competitive. The results can help to optimize glass compositions that can be strengthened by this method.

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Cite This Study

Stoelzel et al. (2026) studied this question.

synapsesocial.com/papers/69e3211640886becb654053chttps://doi.org/10.82491/opusthd-269
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Strengthening Potentials of Lithium-Doped Soda-Lime-Silicate Glasses Through Surface Crystallization of Quartz-ss2026
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  5. 5Thermodynamic Modeling of Glass Formation and DFT Calculations of Li 2 O–K 2 O–SiO 2 Melt Crystallization Within a Unified Structural Model2026