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April 1, 2026Journal of Thermal Analysis and Calorimetry2 citationsOpen Access

The influence of Li2O on the structural and thermal properties of Al2O3–CaO–K2O–Na2O–SiO2 glass

ANAleksandra NowickaBHBranislav HruškaJGJaroslava Gombárová

Key Points

  • To investigate how varying concentrations of Li2O affect the structural and thermal properties of specific glass compositions.
  • Analyzed six glass compositions in the Al2O3–CaO–K2O–Na2O–SiO2 system with 0–10% Li2O concentration.
  • Examined physicochemical properties, glass density, and molar volume.
  • Used X-ray diffraction to confirm amorphous structures up to 6 mass% Li2O.
  • Conducted differential thermal analysis to assess glass transition temperatures and crystallization behavior.
  • Employed Raman spectroscopy to identify changes in Si–O linkages and structural units.
  • Glass density increased slightly from 2.50 to 2.53 g cm -3 with added Li2O.
  • Molar volume decreased from 61 to 56 cm 3 mol -1 due to the formation of non-bridging oxygens.
  • Glass transition temperature decreased with higher Li2O content, particularly for samples with 8–10 mass% Li2O.
  • Exothermic crystallization peaks appeared between 600 and 800 °C for higher Li2O samples.
  • Li2O acted as a network modifier, increasing Si–O stretching vibrations in Raman analysis.

Abstract

Abstract This study investigates and compares the structural and thermal properties of six glasses in the Al 2 O 3 –CaO–K 2 O–Li 2 O–Na 2 O–SiO 2 system with varying Li 2 O concentration (0–10 mass%). The physicochemical, thermal, and structural characteristics were systematically analyzed. The addition of Li 2 O resulted in a change in glass density ranging from 2.50 to 2.53 g cm -3 and in a decrease of the molar volume (from 61 to 56 cm 3 mol -1 ), attributed to the formation of non-bridging oxygens (NBO) and a more compact glass structure. X-ray diffraction confirmed that samples up to 6 mass% Li 2 O remained fully amorphous. Differential thermal analysis revealed a decrease in glass transition temperature ( T g ) with increasing Li 2 O content and the appearance of exothermic crystallization peaks between 600 and 800 °C for glasses containing 8–10 mass% Li 2 O. Raman spectroscopy confirmed that Li 2 O acts as a network modifier, breaking Si–O–Si linkages and increasing the intensity of the band at 960 cm −1 , corresponding to Si–O stretching vibrations. The study also highlighted the changes in Q n structural units with increasing Li 2 O concentration, leading to enhanced depolymerization and structural distortion of the silicate network.

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Cite This Study

Nowicka et al. (2026) studied this question.

synapsesocial.com/papers/69ccb68116edfba7beb881c2https://doi.org/10.1007/s10973-026-15440-4
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