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Cooling Rate Effects on Thermal Expansion of Sodium Alkaline‐Earth Aluminosilicate Glasses: Experiments and Simulations

热膨胀 材料科学 硅酸铝 氧化钠 复合材料 体积热力学 热力学 氧化物 热的 玻璃化转变 体积膨胀 硅酸钠 无定形固体 分子动力学 水冷 铝硅酸钠 矿物学 材料性能 氧化铝 石英玻璃
作者
Rikiya Kado,Shingo Urata
出处
期刊:Journal of the American Ceramic Society [Wiley]
卷期号:109 (4)
标识
DOI:10.1111/jace.70706
摘要

ABSTRACT The coefficient of thermal expansion (CTE) is a critical property for oxide glass when used as a sealing material or carrier substrate, as matching the CTE with that of other materials is essential to prevent deformation, warping, and damage at the interface. The CTE is typically controlled by adjusting the glass composition; however, it is also influenced by the cooling rate during the production process. Nevertheless, the effect of cooling rate on the CTE of oxide glass materials has rarely been reported. In this study, the CTE and its dependence on cooling rate were experimentally investigated for a series of sodium aluminosilicate glasses with the composition (, Ca, Mg). The measurements were conducted at cooling rates of 1 and 100 K/min. Consequently, the effect of cooling rate was found to be more pronounced in ‐lean glasses, while it was insignificant for glasses with [] []. To elucidate the mechanism underlying the influence of content on the cooling rate dependence of the CTE, molecular dynamics (MD) simulations were conducted using two methods to estimate the CTE. The first method involved heating simulations to evaluate the volume change with temperature, while the second method measured fluctuations in enthalpy and volume to determine the CTE. The effect of cooling rate was investigated by performing MD simulations at four cooling rates: 0.1, 1, 10, and 100 K/ps, for two contrasting glass compositions, and , in . Consequently, the experimental trend—where the glass with is less sensitive to the cooling rate—was successfully reproduced by both methods when the glass structures were sufficiently equilibrated prior to measuring the CTE. Microstructure analyses revealed that doping stabilizes calcium coordination in the glass, thereby reducing the influence of cooling rate on the CTE. This may be attributed to the tendency of alkaline‐earth ions to localize around aluminum segregation.

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