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United Atom Force Field for Molecular Dynamics Simulations of 1,4-Polybutadiene Based on Quantum Chemistry Calculations on Model Molecules

机译:基于模型分子的量子化学计算的1,4-聚丁二烯分子动力学模拟的联合原子力场

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We present a united atom force field for simulations of 1,4-polybutadiene based on ab initio quantum chemistry calculations on model molecules. The geometries and energies of conformers and rotational energy barriers in model alkenes and dienes have been determined from high-level quantum chemistry calculations.A rotational isomeric state (RIS) model for 1,4-polybutadiene based on the conformer geometries and energies of the model molecules has been derived. The characteristic ratio and its temperature dependence for 1,4-polybutadiene and trans-1,4-polybutadiene, and the characteristic ratio of a random copolymer of cis- and trans units, as predicted by the RIS model, are in good agreement with experimental values, thereby supporting the accuracy of the quantum chemistry calculations. Torsional potentials for the united atom force field have been parametrized to reproduce the quantum chemistry conformer energies and rotational energy bard for rotations about the C(sp2)-C(sp2), C(sp2)-C(sp3), and C(sp3)-C(sp3) dihedrals for the model comporting. The CH2-CH2 united atom nonbonded potential has been taken from previous work on polyethylene melts, while the CH-CH united atom nonbonded potential has been parametrized so as to reproduce the energies of those conformers of the model molecules involving conformation-dependent second-order interactions. Finally, NPT molecular dynamics simulations have been performed on a melt of 1,4-poly(cis↓(0.5)-r-trans↓(0.5)-butadiene), and the CH2-CH nonbonded potential has been adjusted so that the experimental melt density of the polymer as a function of temperature is accurately reproduced.
机译:我们基于模型分子的从头量子化学计算,给出了一个用于模拟1,4-聚丁二烯的联合原子力场。通过高级量子化学计算确定了模型烯烃和二烯中构象异构体的几何形状和能量以及旋转能垒。基于模型的构象异构体几何形状和能量,基于1,4-聚丁二烯的旋转异构态(RIS)模型分子已经衍生。 RIS模型预测的1,4-聚丁二烯和反式1,4-聚丁二烯的特征比及其温度依赖性以及顺式和反式单元的无规共聚物的特征比与实验吻合值,从而支持量子化学计算的准确性。参数化联合原子力场的扭转势能重现绕C(sp2)-C(sp2),C(sp2)-C(sp3)和C(sp3)旋转的量子化学构象子能量和旋转能)-C(sp3)二面角模型。 CH2-CH2原子非键合电势取自先前在聚乙烯熔体上的工作,而CH-CH原子非键合电势已参数化,以复制涉及构象依赖性二阶模型分子的那些构象体的能量互动。最后,对1,4-聚(顺式(0.5)-r-反式(0.5)-丁二烯)的熔体进行了NPT分子动力学模拟,并调整了CH2-CH的非键电位,从而进行了实验。精确地再现了聚合物的熔体密度随温度的变化。

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