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结晶聚乙烯的熔融模拟。

Simulation of melting in crystalline polyethylene.

机构信息

N.N. Semenov Institute of Chemical Physics, Russian Academy of Sciences, 4 Kosygin Street, Moscow 119991, Russia.

出版信息

J Chem Phys. 2012 Jun 14;136(22):224906. doi: 10.1063/1.4728112.

Abstract

We carry out a molecular dynamics simulation of the first stages of constrained melting in crystalline polyethylene (PE). When heated, the crystal undergoes two structural phase transitions: from the orthorhombic (O) phase to the monoclinic (M) phase, and then to the columnar (C), quasi-hexagonal, phase. The M phase represents the tendency to the parallel packing of planes of PE zigzags, and the C phase proves to be some kind of oriented melt. We follow both the transitions O→M and M→C in real time and establish that, at their beginning, the crystal tries (and fails) to pass into the partially ordered phases similar to the RI and RII phases of linear alkanes, correspondingly. We discuss the molecular mechanisms and driving forces of the observed transitions, as well as the reasons why the M and C phases in PE crystals substitute for the rotator phases in linear alkanes.

摘要

我们对晶态聚乙烯(PE)的约束熔化的初始阶段进行了分子动力学模拟。在加热过程中,晶体经历了两个结构相变:从正交(O)相到单斜(M)相,然后到柱状(C)、准六方相。M 相代表了 PE 之字形平面平行堆积的趋势,而 C 相则证明是某种取向熔体。我们实时跟踪 O→M 和 M→C 这两个相变,并确定在其开始时,晶体试图(但未能)进入类似于线性烷烃的 RI 和 RII 相的部分有序相。我们讨论了观察到的相变的分子机制和驱动力,以及 PE 晶体中的 M 和 C 相取代线性烷烃的旋转相的原因。

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