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Atomistic molecular dynamics simulation of the temperature and pressure dependences of local and terminal relaxations in cis-1,4-polybutadiene

机译:顺式-1,4-聚丁二烯局部和末端弛豫的温度和压力依赖性的原子分子动力学模拟

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摘要

The dynamics of cis-1,4-polybutadiene (cis-1,4-PB) over a wide range of temperature and pressure conditions is explored by conducting atomistic molecular dynamics (MD) simulations with a united atom model on a 32-chain C-128 cis-1,4-PB system. The local or segmental dynamics is analyzed in terms of the dipole moment time autocorrelation function (DACF) of the simulated polymer and its temperature and pressure variations, for temperatures as low as 195 K and pressures as high as 3 kbars. By Fourier transforming the DACF, the dielectric spectrum, epsilon(*)=epsilon(')+i epsilon(')=epsilon(*)(omega), is computed and the normalized epsilon(')/epsilon(')(max) vs omega/omega(max) plot is analyzed on the basis of the time-temperature and time-pressure superposition principles. The relative contribution of thermal energy and volume to the segmental and chain relaxation processes are also calculated and evaluated in terms of the ratio of the activation energy at constant volume to the activation energy at constant pressure, Q(V)/Q(P). Additional results for the temperature and pressure dependences of the Rouse times describing terminal relaxation in the two polymers show that, in the regime of the temperature and pressure conditions covered here, segmental and chain relaxations are influenced similarly by the pressure and temperature variations. This is in contrast to what is measured experimentally [see, e.g., G. Floudas and T. Reisinger, J. Chem. Phys. 111, 5201 (1999); C. M. Roland ,J. Polym. Sci. Part B, 41, 3047 (2003)] for other, chemically more complex polymers that pressure has a stronger influence on the dynamics of segmental mode than on the dynamics of the longest normal mode, at least for the regime of temperature and pressure conditions covered in the present MD simulations.
机译:通过在32链C上用联合原子模型进行原子分子动力学(MD)模拟,探索了在宽温度和压力条件下cis-1,4-聚丁二烯(cis-1,4-PB)的动力学。 -128 cis-1,4-PB系统。根据模拟聚合物的偶极矩时间自相关函数(DACF)及其温度和压力变化来分析局部或分段动力学,对于低至195 K的温度和高至3 kbar的压力。通过傅里叶变换DACF,可以计算出介电谱epsilon(*)= epsilon(')+ i epsilon(')= epsilon(*)ω并归一化epsilon(')/ epsilon(')(max )vs omega / omega(max)图是根据时间-温度和时间-压力叠加原理进行分析的。还根据恒定体积的活化能与恒定压力下的活化能之比Q(V)/ Q(P)计算和评估了热能和体积对节段和链松弛过程的相对贡献。劳斯时间的温度和压力依赖性的其他结果描述了两种聚合物的末端弛豫,结果表明,在此处涵盖的温度和压力条件范围内,分段和链弛豫同样受到压力和温度变化的影响。这与实验测量的结果相反[参见,例如,G.Floudas和T.Reisinger,J.Chem.Soc。物理111,5201(1999);罗兰(C. M. Polym。科学B部分,第41卷,第3047页(2003年)],对于化学性质更为复杂的其他聚合物,至少对于所涵盖的温度和压力条件,压力对分段模式动力学的影响大于对最长正态模式动力学的影响。在当前的MD模拟中。

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