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Glass softening kinetics in the limit of high heating rates

机译:玻璃软化动力学在高加热速率极限下

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Surface-facilitated, front-propagated softening of glassy materials is now a well-known phenomenon, which is common to stable vapor deposited glasses. As we demonstrate in our recent communication, this softening pathway is not unique to vapor deposited vitreous phases and can be observed in ordinary melt-cooled glasses in the limit of high heating rates [Cubeta et al., J. Chem. Phys. 147(7), 071101 (2017)]. Expanding on this preliminary report, we use our thin-wire, quasi-adiabatic fast scanning calorimetry technique to investigate softening kinetics of micrometer scale, viscous liquid methylbenzene, and 2-propanol films, which are fully equilibrated at distinct temperatures near the compounds' standard glass hardening transition ranges. Heating of each sample with rates in excess of 105 K.s(-1) results in softening kinetics that are well approximated by an Arrhenius temperature function. Remarkably, the apparent activation energy barriers to non-equilibrium, front-propagated softening matches the barriers to near-equilibrium self-diffusivity at the samples' initial temperatures. Furthermore, our analysis also shows an exceptionally strong correlation between the high temperature softening rate and the self-diffusion coefficients at low initial temperatures. Finally, our front softening velocities are also strongly dependent on the samples' initial states, much more so than previously observed. Based on these results, we propose an extended Wilson-Frenkel model of non-equilibrium phase transformations as a general theoretical framework to describe front propagated softening in glassy materials. Published under license by AIP Publishing.
机译:表面促进的,玻璃材料的前繁殖软化现在是一种众所周知的现象,这是稳定的气相沉积玻璃的常见现象。正如我们在最近的通信中所证明的那样,这种软化途径对气相沉积的玻璃阶段不是独特的,并且可以在高加热速率极限的普通熔融冷却眼镜中观察到普通熔融冷却玻璃[Cubeta等,J.Chem。物理。 147(7),071101(2017)]。在这一初步报告中扩展,我们使用我们的薄线,准绝热的快速扫描量热法研究微米刻度,粘性液体甲基苯和2-丙醇薄膜的软化动力学,其在化合物标准附近的不同温度下完全平衡玻璃硬化过渡范围。每种样品的加热超过105k的率(-1),导致软化动力学,其受到Arrhenius温度函数良好的近似的动力学。值得注意的是,非平衡的明显激活能量屏障,前传播软化与样品初始温度的屏障与近平衡自扩散率的屏障相匹配。此外,我们的分析还显示出在低初始温度下的高温软化速率和自扩散系数之间的异常强的相关性。最后,我们的前柔软速度也强烈依赖于样本的初始状态,而不是先前观察到的。基于这些结果,我们提出了一种延长的威尔逊 - Frenkel模型,非平衡相变模型作为一般理论框架,以描述玻璃材料中的前进繁殖的软化。通过AIP发布在许可证下发布。

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