Thomas C. Merlette, Elian Masnada, Paul Sotta and Didier R. Long
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引用次数: 0
摘要
1936年,Eyring引入了一个塑性流动模型,该模型至今仍是几乎所有关于玻璃聚合物塑性研究的基础。虽然他引入的激活过程的概念从根本上是相关的,但我们在这里认为,在任何情况下,Eyring模型都不可能是正确的,因为它违反了居里原理,这是统计力学的基本物理要求。[Long et al., Phys]提出了另一种模型。启板牙。[j] .光子学报,2018,2,105601]来描述由外加应力引起的动力学加速,其中存储在动态非均质长度尺度上的弹性能量ξ≈3 - 5nm降低了弛豫的自由能垒。虽然这个模型和Eyring一样,仍然认为α-松弛是一个激活过程,但它完全符合居里原理。它是基于自由能垒的朗道展开作为施加应力的函数。我们认为,由于α-弛豫涉及的大长度尺度,只应保留前二次项,因为高阶项可以忽略不计。我们讨论了几个最近的实验来证实这些特征。该模型为将玻璃聚合物的可塑性置于非平衡统计物理和凝聚态物理领域开辟了道路,我们认为这是考虑玻璃化转变物理和玻璃化聚合物机械性能的适当框架。
Eyring theory for plasticity in amorphous polymers violates Curie's principle
In 1936, Eyring introduced a model for plastic flow which still forms the bedrock of practically all studies on plasticity of glassy polymers. Though the concept of activated process he introduced is fundamentally relevant, we argue here that under no circumstances can the Eyring model be correct as it violates Curie's principle, which is a basic physical requirement of statistical mechanics. An alternative model was proposed by [Long et al., Phys. Rev. Mater., 2018, 2, 105601] to describe the acceleration of the dynamics by an applied stress, in which the elastic energy stored at the length scale of dynamical heterogeneities ξ ≈ 3 – 5 nm reduces the free energy barriers for relaxation. While this model still considers α-relaxation as an activated process, as did Eyring, it fully complies with Curie's principle. It is based on a Landau expansion of the free energy barriers as a function of the applied stress. We argue that, due to the large length scale involved in the α-relaxation, only the leading quadratic order term should be retained, as higher order terms are negligible. We discuss a few recent experiments which confirm these features. This model opens the way to set glassy polymers plasticity into the realm of out-of-equilibrium statistical physics and condensed matter physics, which we argue is the appropriate framework for considering the physics of glass transition and mechanical properties of glassy polymers.
期刊介绍:
Soft Matter is an international journal published by the Royal Society of Chemistry using Engineering-Materials Science: A Synthesis as its research focus. It publishes original research articles, review articles, and synthesis articles related to this field, reporting the latest discoveries in the relevant theoretical, practical, and applied disciplines in a timely manner, and aims to promote the rapid exchange of scientific information in this subject area. The journal is an open access journal. The journal is an open access journal and has not been placed on the alert list in the last three years.