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胶体螺旋胆甾相:根据颗粒形状和热力学状态预测宏观螺距

Cholesterics of colloidal helices: predicting the macroscopic pitch from the particle shape and thermodynamic state.

作者信息

Dussi Simone, Belli Simone, van Roij René, Dijkstra Marjolein

机构信息

Soft Condensed Matter, Debye Institute for Nanomaterials Science, Utrecht University, Princetonplein 5, 3584 CC Utrecht, The Netherlands.

Institute for Theoretical Physics, Center for Extreme Matter and Emergent Phenomena, Utrecht University, Leuvenlaan 4, 3584 CE Utrecht, The Netherlands.

出版信息

J Chem Phys. 2015 Feb 21;142(7):074905. doi: 10.1063/1.4908162.

Abstract

Building a general theoretical framework to describe the microscopic origin of macroscopic chirality in (colloidal) liquid crystals is a long-standing challenge. Here, we combine classical density functional theory with Monte Carlo calculations of virial-type coefficients to obtain the equilibrium cholesteric pitch as a function of thermodynamic state and microscopic details. Applying the theory to hard helices, we observe both right- and left-handed cholesteric phases that depend on a subtle combination of particle geometry and system density. In particular, we find that entropy alone can even lead to a (double) inversion in the cholesteric sense of twist upon changing the packing fraction. We show how the competition between single-particle properties (shape) and thermodynamics (local alignment) dictates the macroscopic chiral behavior. Moreover, by expanding our free-energy functional, we are able to assess, quantitatively, Straley's theory of weak chirality, which is used in several earlier studies. Furthermore, by extending our theory to different lyotropic and thermotropic liquid-crystal models, we analyze the effect of an additional soft interaction on the chiral behavior of the helices. Finally, we provide some guidelines for the description of more complex chiral phases, like twist-bend nematics. Our results provide new insights into the role of entropy in the microscopic origin of this state of matter.

摘要

构建一个通用的理论框架来描述(胶体)液晶中宏观手性的微观起源是一项长期存在的挑战。在这里,我们将经典密度泛函理论与维里型系数的蒙特卡罗计算相结合,以获得作为热力学状态和微观细节函数的平衡胆甾相螺距。将该理论应用于硬螺旋,我们观察到取决于粒子几何形状和系统密度微妙组合的右手性和左手性胆甾相。特别是,我们发现仅熵甚至可以在改变堆积分数时导致胆甾相扭转方向的(双重)反转。我们展示了单粒子性质(形状)和热力学(局部排列)之间的竞争如何决定宏观手性行为。此外,通过扩展我们的自由能泛函,我们能够定量评估斯特拉利的弱手性理论,该理论在早期的一些研究中被使用。此外,通过将我们的理论扩展到不同的溶致和热致液晶模型,我们分析了额外软相互作用对螺旋手性行为的影响。最后,我们为描述更复杂的手性相(如扭曲弯曲向列相)提供了一些指导方针。我们的结果为熵在这种物质状态微观起源中的作用提供了新的见解。

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