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Transport properties of glass-forming liquids suggest that dynamic crossover temperature is as important as the glass transition temperature

机译:玻璃形成液的传输特性表明动态穿越温度与玻璃化转变温度一样重要

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摘要

It is becoming common practice to partition glass-forming liquids into two classes based on the dependence of the shear viscosity η on temperature T. In an Arrhenius plot, ln η vs 1/T, a strong liquid shows linear behavior whereas a fragile liquid exhibits an upward curvature [super-Arrhenius (SA) behavior], a situation customarily described by using the Vogel–Fulcher–Tammann law. Here we analyze existing data of the transport coefficients of 84 glass-forming liquids. We show the data are consistent, on decreasing temperature, with the onset of a well-defined dynamical crossover η×, where η× has the same value, η× ≈ 103 Poise, for all 84 liquids. The crossover temperature, T×, located well above the calorimetric glass transition temperature Tg, marks significant variations in the system thermodynamics, evidenced by the change of the SA-like T dependence above T× to Arrhenius behavior below T×. We also show that below T× the familiar Stokes–Einstein relation D/T ∼ η-1 breaks down and is replaced by a fractional form D/T ∼ η-ζ, with ζ ≈ 0.85.
机译:根据剪切粘度η对温度T的依赖关系,将形成玻璃的液体分为两类已成为一种常见的做法。在Arrhenius图中,lnη与1 / T相比,强液体表现出线性行为,而易碎液体表现出线性行为。向上弯曲[超级阿累尼乌斯(SA)行为],通常使用Vogel–Fulcher–Tammann定律描述这种情况。在这里,我们分析了84种玻璃形成液体的传输系数的现有数据。我们显示,在温度降低的情况下,数据与定义明确的动态交叉ηx的发生是一致的,其中对于所有84种液体,ηx的值均相同,η×≈10 3 Poise 。跨越温度Tx远高于量热玻璃化转变温度Tg,它标志着系统热力学的显着变化,这由高于Tx的SA样T依赖性转变为低于Tx的阿累尼乌斯行为证明。我们还表明,在T×以下,熟悉的Stokes-Einstein关系D / T〜η -1 分解并且被分数形式 D / T < / em>〜η -ζ ,其中ζ≈0.85。

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