Yoshioka Jun, Fukao Koji
Department of Physical Sciences, Ritsumeikan University, 1-1-1 Noji-Higashi, Kusatsu, Shiga 525-8577, Japan.
J Phys Condens Matter. 2020 May 15;32(32). doi: 10.1088/1361-648X/ab83b1.
In this study, we demonstrate a self-excited oscillation induced in cholesteric liquid crystalline droplets under a temperature gradient. At equilibrium, a winding Maltese cross pattern with a point defect was observed via polarised microscopy in the droplets dispersed in an isotropic solvent. When the temperature gradient was applied, the pattern was deformed owing to the Marangoni convection induced by the gradient. Here, when both the droplet size and temperature gradient were sufficiently large, the periodic movement of the defect together with the pattern deformation was observed, which demonstrated the self-excited oscillation of the director field. To describe this phenomenon, we theoretically analysed the flow and director fields by using Onsager's variational principle. This principle enabled the simplified description of the phenomenon; consequently, the time evolution of the director field could be expressed by the phenomenological equations for the two parameters characterising the field. These equations represented the van der Pol equation, which well expressed the mechanism of the self-excited oscillation.
在本研究中,我们展示了在温度梯度下胆甾相液晶液滴中诱导产生的自激振荡。在平衡状态下,通过偏振显微镜在分散于各向同性溶剂中的液滴中观察到具有点缺陷的缠绕马耳他十字图案。当施加温度梯度时,由于梯度诱导的马兰戈尼对流,图案发生变形。在此,当液滴尺寸和温度梯度都足够大时,观察到缺陷的周期性运动以及图案变形,这证明了指向矢场的自激振荡。为描述这一现象,我们利用昂萨格变分原理对流动场和指向矢场进行了理论分析。该原理使得能够对该现象进行简化描述;因此,指向矢场的时间演化可以由表征该场的两个参数所对应的唯象方程来表示。这些方程代表了范德波尔方程,可以很好地解释自激振荡机制。