Molecular dynamics calculation to clarify the relationship between structure and mechanical properties of polymer crystals: the case of orthorhombic polyethylene

K. Tashiro
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引用次数: 21

Abstract

The molecular dynamics (MD) technique was used to calculate the temperature dependence of the structure, molecular motion, and mechanical property of the orthorhombic polyethylene (PE) crystal. The potential functional parameters reported by Karasawa et al. (J Phys Chem, 95 (1991) 2260) were refined further so that the vibrational frequencies of infrared and Raman bands, measured by us at ultra-low temperatures for the normal and fully deuterated PE, could be reproduced well. The flip-flop motion around the chain axis and the torsional motion of the skeletal chains were found to start above ca. 350 K and increase the amplitude of these motions progressively. Coupling these two types of chain motion resulted in a steep increase of the thermal vibration parameters or the mean-square-displacements of carbon and hydrogen atoms, corresponding well with the X-ray data. The lattice constants and the related linear thermal expansion coefficients were also found to be in good agreement with the observed data. The calculated Young's modulus along the chain axis decreased gradually with the increasing temperature: 330 GPa at 0 K to 280 GPa at room temperature. The latter was in good agreement with the value of 280–305 GPa evaluated from the Raman measurement of the longitudinal acoustic mode. Young's modulus was found to relate intimately with the chain contraction caused by the skeletal torsional motion. Only 0.3% contraction of the chain resulted in the reduction of the modulus by ca. 35%. A similar behavior was also seen in the trigonal polyoxymethylene and nylon 6 α forms.

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分子动力学计算阐明聚合物晶体结构与力学性能之间的关系:以正交聚乙烯为例
采用分子动力学(MD)技术计算了正交聚乙烯(PE)晶体的结构、分子运动和力学性能与温度的关系。Karasawa等人(J Phys Chem, 95(1991) 2260)报道的潜在功能参数进一步完善,以便我们可以很好地再现正常和完全氘化PE在超低温下测量的红外和拉曼波段的振动频率。围绕链轴的翻转运动和骨架链的扭转运动在大约350 K以上开始,并逐渐增加这些运动的幅度。这两种链式运动的耦合导致碳和氢原子的热振动参数或均方位移的急剧增加,与x射线数据相吻合。晶格常数和相关的线性热膨胀系数也与观测数据吻合较好。沿链轴的杨氏模量随温度的升高逐渐减小:0 K时为330 GPa,室温时为280 GPa。后者与由纵向声模拉曼测量得到的280 ~ 305 GPa值吻合较好。杨氏模量与骨骼扭转运动引起的链式收缩密切相关。仅0.3%的链收缩导致模量降低约35%。在三角聚氧亚甲基和尼龙6 α构象中也观察到类似的行为。
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