Hydrodynamic rotlet dipole driven by spinning chiral liquid crystal droplets

液晶 手性(物理) 偶极子 物理 纺纱 领域(数学) 流量(数学) 奇点 胆甾液晶 经典力学 机械 凝聚态物理 材料科学 手征对称破缺 对称性破坏 量子力学 Nambu–Jona Lasinio模型 数学分析 数学 复合材料 纯数学
作者
Takaki Yamamoto,Masaki Sano
出处
期刊:Physical review [American Physical Society]
卷期号:99 (2) 被引量:9
标识
DOI:10.1103/physreve.99.022704
摘要

Chirality is an essential evolutionary-conserved physical aspect of swimming microorganisms. However, the role of chirality on the hydrodynamics of such microswimmers is still being elucidated. Hydrodynamic theories have so far predicted that, under a torque-free condition satisfied in the system of microswimmers, a rotlet dipole generating a twisting flow is the leading-order singularity of the chiral flow field. Nevertheless, such a chiral flow field has never been experimentally detected. Here we explore a hydrodynamic field generated in a system of a chiral microswimmer, where a droplet of a cholesteric liquid crystal (CLC) exhibits helical and spinning motions in surfactant solutions due to a chiral nonequilibrium cross coupling between the rotation and the Marangoni flow. Combining measurement of the flow field around the spinning CLC droplets and a computational flow modeling, we revealed that the CLC droplets generate a flow field of a rotlet dipole. Remarkably, we found that the chiral component of the flow field decays with distance $r$ as ${r}^{\ensuremath{-}3}$, which is consistent with the theoretical prediction for the flow field produced by a point singularity of a rotlet dipole. Our findings will promote the understanding of roles of chirality on the hydrodynamics in active matter as well as liquid crystals.
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