首页> 外文期刊>The European physical journal, E. Soft matter >Mechanical properties of thin confined polymer films close to the glass transition in the linear regime of deformation: Theory and simulations
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Mechanical properties of thin confined polymer films close to the glass transition in the linear regime of deformation: Theory and simulations

机译:在线性变形区中接近玻璃化转变的薄约束聚合物薄膜的机械性能:理论和模拟

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Over the past twenty years experiments performed on thin polymer films deposited on substrates have shown that the glass transition temperature Tg can either decrease or increase depending on the strength of the interactions. Over the same period, experiments have also demonstrated that the dynamics in liquids close to the glass transition temperature is strongly heterogeneous, on the scale of a few nanometers. A model for the dynamics of non-polar polymers, based on percolation of slow subunits, has been proposed and developed over the past ten years. It proposes a unified mechanism regarding these two features. By extending this model, we have developed a 3D model, solved by numerical simulations, in order to describe and calculate the mechanical properties of polymers close to the glass transition in the linear regime of deformation, with a spatial resolution corresponding to the subunit size. We focus on the case of polymers confined between two substrates with non-negligible interactions between the polymer and the substrates, a situation which may be compared to filled elastomers. We calculate the evolution of the elastic modulus as a function of temperature, for different film thicknesses and polymer-substrate interactions. In particular, this allows to calculate the corresponding increase of glass transition temperature, up to 20K in the considered situations. Moreover, between the bulk Tg and Tg +50K the modulus of the confined layers is found to decrease very slowly in some cases, with moduli more than ten times larger than that of the pure matrix at temperatures up to Tg + 50 K. This is consistent with what is observed in reinforced elastomers. This slow decrease of the modulus is accompanied by huge fluctuations of the stress at the scale of a few tens of nanometers that may even be negative as compared to the solicitation, in a way that may be analogous to mechanical heterogeneities observed recently in molecular dynamics simulations. As a consequence, confinement may result not only in an increase of the glass transition temperature, but in a huge broadening of the glass transition.
机译:在过去的二十年中,对沉积在基板上的聚合物薄膜进行的实验表明,玻璃化转变温度Tg可以根据相互作用的强度而降低或升高。在同一时期,实验还证明,在接近玻璃化转变温度的液体中,动力学具有很大的异质性,只有几纳米。在过去的十年中,已经提出并开发了基于慢亚基渗透的非极性聚合物动力学模型。它针对这两个功能提出了一个统一的机制。通过扩展此模型,我们开发了3D模型,并通过数值模拟对其进行了求解,以便描述和计算在线性变形范围内接近玻璃化转变的聚合物的机械性能,其空间分辨率对应于亚单元尺寸。我们关注的是聚合物被限制在两个基材之间且聚合物与基材之间的相互作用不可忽略的情况,这种情况可以与填充的弹性体进行比较。对于不同的膜厚度和聚合物-基材相互作用,我们计算了弹性模量随温度的变化。特别地,这允许计算相应的玻璃化转变温度升高,在所考虑的情况下最高可达20K。此外,发现在某些情况下,在体温Tg和Tg + 50K之间,密闭层的模量下降非常缓慢,在高达Tg + 50 K的温度下,模量比纯基质的模量大十倍。与增强弹性体中观察到的一致。模量的这种缓慢降低伴随着几十纳米尺度上的巨大应力波动,与起征作用相比,该波动甚至可能是负的,其方式可能类似于最近在分子动力学模拟中观察到的机械异质性。结果,限制不仅可以导致玻璃化转变温度的升高,而且可以导致玻璃化转变的极大扩展。

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