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熵在玻璃化转变附近分子动力学时间尺度的热力学演化中的作用。

Role of entropy in the thermodynamic evolution of the time scale of molecular dynamics near the glass transition.

作者信息

Grzybowska K, Grzybowski A, Pawlus S, Pionteck J, Paluch M

机构信息

Institute of Physics, University of Silesia, Uniwersytecka 4, 40-007 Katowice, Poland.

Silesian Center for Education and Interdisciplinary Research, 75 Pułku Piechoty 1A, 41-500 Chorzów, Poland.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2015 Jun;91(6):062305. doi: 10.1103/PhysRevE.91.062305. Epub 2015 Jun 15.

Abstract

In this paper, we investigate how changes in the system entropy influence the characteristic time scale of the system molecular dynamics near the glass transition. Independently of any model of thermodynamic evolution of the time scale, against some previous suppositions, we show that the system entropy S is not sufficient to govern the time scale defined by structural relaxation time τ. In the density scaling regime, we argue that the decoupling between τ and S is a consequence of different values of the scaling exponents γ and γ(S) in the density scaling laws, τ=f(ρ(γ)/T) and S=h(ρ(γ(S))/T), where ρ and T denote density and temperature, respectively. It implies that the proper relation between τ and S requires supplementing with a density factor, u(ρ), i.e., τ=g(u(ρ)w(S)). This meaningful finding additionally demonstrates that the density scaling idea can be successfully used to separate physically relevant contributions to the time scale of molecular dynamics near the glass transition. The relation reported by us between τ and S constitutes a general pattern based on nonconfigurational quantities for describing the thermodynamic evolution of the characteristic time scale of molecular dynamics near the glass transition in the density scaling regime, which is a promising alternative to the approaches based as the Adam-Gibbs model on the configurational entropy that is difficult to evaluate in the entire thermodynamic space. As an example, we revise the Avramov entropic model of the dependence τ(T,ρ), giving evidence that its entropic basis has to be extended by the density dependence of the maximal energy barrier for structural relaxation. We also discuss the excess entropy S(ex), the density scaling of which is found to mimic the density scaling of the total system entropy S.

摘要

在本文中,我们研究了系统熵的变化如何影响玻璃化转变附近系统分子动力学的特征时间尺度。与任何时间尺度的热力学演化模型无关,与先前的一些假设相反,我们表明系统熵S不足以支配由结构弛豫时间τ定义的时间尺度。在密度标度 regime中,我们认为τ和S之间的解耦是密度标度定律τ=f(ρ(γ)/T)和S=h(ρ(γ(S))/T)中标度指数γ和γ(S)的不同值的结果,其中ρ和T分别表示密度和温度。这意味着τ和S之间的恰当关系需要用一个密度因子u(ρ)来补充,即τ=g(u(ρ)w(S))。这一有意义的发现还表明,密度标度思想可以成功地用于分离对玻璃化转变附近分子动力学时间尺度的物理相关贡献。我们报道的τ和S之间的关系构成了一种基于非构型量的通用模式,用于描述密度标度 regime中玻璃化转变附近分子动力学特征时间尺度的热力学演化,这是一种有前途的替代方法,可替代基于难以在整个热力学空间中评估的构型熵的Adam-Gibbs模型的方法。例如,我们修正了τ(T,ρ)依赖性的Avramov熵模型,证明其熵基必须通过结构弛豫的最大能垒的密度依赖性来扩展。我们还讨论了过量熵S(ex),发现其密度标度模仿了总系统熵S的密度标度。

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