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Thermomechanical coupling in coarse grained cholesteric liquid crystal model systems with pitches of realistic length

机译:节距为实际长度的粗粒胆甾型液晶模型系统中的热机械耦合

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Thermomechanical coupling in cholesteric liquid crystals, i.e. when a temperature gradient parallel to the cholesteric axis rotates the director, has been studied in a model system of soft ellipsoids where the interaction potential has been augmented by a chiral potential. More specifically, the cross coupling coefficient between the temperature gradient and the director angular velocity, or Leslie coefficient, has been obtained as a function of the pitch by evaluating the corresponding Green-Kubo relation by molecular dynamics simulation. The product of the Leslie coefficient and the pitch has been found to be constant within the statistical uncertainty. This is in accordance with a symmetry condition originally proposed by de Gennes and it means that the Leslie coefficient of systems with longer pitches can be obtained from systems with shorter pitches. Since the pitches of realistic systems are usually very long, it becomes possible to study thermomechanical coupling in these systems which otherwise would have required prohibitively long simulations. Since we also have obtained rather accurate data on the cross correlation function between the director angular velocity and the heat current density, it becomes possible to analyse the mechanism of thermomechanical coupling to some extent.
机译:胆甾型液晶中的热机械耦合,即当平行于胆甾型轴的温度梯度使指向矢旋转时,已经在软椭圆体模型系统中研究了其中手性势使相互作用势增加的现象。更具体地,通过分子动力学模拟评估相应的格林-久保关系,已经获得了温度梯度和指向矢角速度之间的交叉耦合系数或莱斯利系数作为间距的函数。已经发现莱斯利系数和音高的乘积在统计不确定性内是恒定的。这符合de Gennes最初提出的对称性条件,这意味着可以从具有较小音调的系统中获得具有较大音调的系统的Leslie系数。由于现实系统的螺距通常很长,因此有可能研究这些系统中的热机械耦合,否则将需要进行冗长的模拟。由于我们还获得了指向矢角速度与热电流密度之间的互相关函数的相当准确的数据,因此可以在某种程度上分析热机械耦合的机理。

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