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Molecular dynamics study of isobaric and isochoric glass transitions in a model amorphous polymer

机译:模型非晶聚合物中等压和等压玻璃化转变的分子动力学研究

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We perform molecular dynamics simulations of the glass transition through isobaric and isochoric cooling of a model polymeric material. In general, excellent agreement between the simulation results and the existing experimental trends is observed. The glass transition temperature (T_g) is found to be a function of pressure under isobaric conditions and specific volume under isochoric conditions. Under both isobaric and isochoric conditions, the trans-state fraction and the torsional contributions to the energy undergo abrupt changes at the glass transition temperature. We analyze these data to show that the glass transition is primarily associated with the freezing of the torsional degrees of the polymer chains which is strongly coupled to the degree of freedom associated with the nonbonded Lennard-Jones potential. We attribute the greater strength of the glass transition under constant pressure conditions to the fact that the nonbonded Lennard-Jones potential is sensitive to the specific volume, which does not change during cooling under isochoric conditions. Comparison of the isochoric and isobaric data demonstrate that the thermodynamic state is independent of cooling path above T_g, while path-dependent below T_g. The simulation data show that the free volume at the isobaric glass transition temperature is pressure dependent. We also find that a glass transition occurs under isochoric conditions, even through the free volume actually increases with decreasing temperature.
机译:我们通过模型聚合物材料的等压和等压冷却进行玻璃化转变的分子动力学模拟。通常,观察到模拟结果与现有实验趋势之间的极佳一致性。发现玻璃化转变温度(T_g)是在等压条件下的压力和在等容条件下的比容的函数。在等压和等压条件下,反态分数和对能量的扭转贡献在玻璃化转变温度下都会发生突变。我们分析这些数据,以表明玻璃化转变主要与聚合物链扭转度的冻结有关,而扭转与未键合的Lennard-Jones势相关的自由度密切相关。我们将恒定压力条件下玻璃化转变的强度更高归因于以下事实:未键合的Lennard-Jones电势对比容敏感,该比容在等容条件下的冷却过程中不会改变。等压和等压数据的比较表明,热力学状态与T_g以上的冷却路径无关,而与T_g以下的路径相关。仿真数据表明,等压玻璃化转变温度下的自由体积与压力有关。我们还发现,即使等体积的自由体积实际上随温度降低而增加,在等容条件下也会发生玻璃化转变。

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