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首页> 外文期刊>The Journal of Chemical Physics >The director and molecular dynamics of the field-induced alignment of a Gay-Berne nematic phase: An isothermal-isobaric nonequilibrium molecular dynamics simulation study
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The director and molecular dynamics of the field-induced alignment of a Gay-Berne nematic phase: An isothermal-isobaric nonequilibrium molecular dynamics simulation study

机译:Gay-Berne向列相的场诱导取向的指向矢和分子动力学:等温-等压非平衡分子动力学模拟研究

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Isothermal-isobaric molecular dynamics simulations have been performed for the generic Gay-Berne (GB) mesogen, GB(4.4, 20.0, 1, 1), to investigate director and molecular rotational motion during the field-induced alignment of a nematic. The alignment process for the director is discussed within the context of a hydrodynamic analysis based on the Ericksen-Leslie theory and this is found to predict the simulated behavior well. The dependence of the relaxation time for the alignment on the field strength is also in good accord with the theory. The rotational viscosity coefficient estimated from the simulation is smaller than that typically observed for real nematics and the possible reasons for this are discussed. However, the simulation results are found to follow not only the theory but also the experiments, at least qualitatively. No significant variation in the local and long-range structure of the nematic phase is found during the field-induced alignment process. In addition, we have explored the molecular dynamics in the nematic phase in the presence of the field using the first- and second-rank time autocorrelation functions. More importantly we are able to show that the director relaxation time is longer than that for molecular rotation. It is also possible to use the two orientational correlation times to explore the relationship between the rotational viscosity coefficient and the rotational diffusion constant. The diffusion constants determined from the orientational correlation times, based on the short-time expansion of the autocorrelation functions, are found to be significantly different. In consequence it is not possible to test, unambiguously, the relationship between the rotational viscosity coefficient and the rotational diffusion constant. However, it would seem that the second-rank rotational correlation time provides the most reliable route to the rotational viscosity coefficient.
机译:已经对通用的盖伊-伯恩(GB)液晶元GB(4.4、20.0、1、1)进行了等温-等压分子动力学模拟,以研究向列型的电场诱导排列过程中的指向矢和分子旋转运动。在基于Ericksen-Leslie理论的水动力分析的背景下讨论了导向器的对准过程,发现该导向器可以很好地预测模拟行为。对准的弛豫时间对场强的依赖性也与理论相符。通过仿真估算出的旋转粘度系数小于实际向列相的典型值,并讨论了可能的原因。然而,发现仿真结果至少在定性上不仅遵循理论,而且遵循实验。在场诱导的对准过程中,没有发现向列相的局部和远距离结构有明显变化。此外,我们已经使用第一和第二级时间自相关函数在场的存在下探索了向列相中的分子动力学。更重要的是,我们能够证明,指向矢弛豫时间比分子旋转更长。也可以使用两个取向相关时间来探索旋转粘度系数和旋转扩散常数之间的关系。发现基于自相关函数的短时扩展,从取向相关时间确定的扩散常数显着不同。结果,不可能明确地测试旋转粘度系数和旋转扩散常数之间的关系。但是,似乎排名第二的旋转相关时间为旋转粘度系数提供了最可靠的途径。

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