论文标题
拓扑嘉年华:手性液晶中托隆微晶的电动运动
Topological carnival: electrically-powered motions of toron crystallites in chiral liquid crystals
论文作者
论文摘要
金属的锻造性是一个示例,说明了缺陷的动力学如何通过外部应力诱导的脱位来改变材料特性并实现技术应用。但是,这些缺陷仅移动以符合宏观尺度上施加的机械力,而分子和原子构建块的行为就像刚性颗粒一样。在这里,我们演示了在振荡的电场中,在软物质培养基中如何出现微晶的运动和它们之间的缺陷,该电场应用于手性液体晶体,并具有多晶的准晶体甲状腺己式甲状腺饰面,称为“ Torons”。电场的周期性振荡垂直于六角形晶格的平面,促使孤子的重复性剪切样变形,这同步了电动的自剪线方向。打开电压打开和关闭电压时变形的时间演变并不是在时间逆转时不变的,这促使质子甲状腺质体的横向翻译定期定期变形晶格。我们探测这些运动如何取决于在类似于液晶显示的实验几何形状中应用的振荡场的电压和频率。我们研究了软词素颗粒的同步变形及其阵列的同步变形与随之而来的动力学和巨大数量波动,由Crystallites的运动,5-7个缺陷对和有序组织中的5-7个缺陷对和晶界。我们讨论我们的发现如何导致拓扑保护但高度可变形的粒子样孤子的动态自组件的技术和基本科学应用。
Malleability of metals is an example of how dynamics of defects like dislocations induced by external stresses alters material properties and enables technological applications. However, these defects move merely to comply with the mechanical forces applied on macroscopic scales whereas the molecular and atomic building blocks behave like rigid particles. Here we demonstrate how motions of crystallites and defects between them can arise within the soft matter medium in an oscillating electric field applied to a chiral liquid crystal with polycrystalline quasi-hexagonal arrangements of self-assembled topological solitons called "torons". Periodic oscillations of electric field applied perpendicular to the plane of hexagonal lattices prompt repetitive shear-like deformations of the solitons, which synchronize the electrically-powered self-shearing directions. The temporal evolution of deformations upon turning voltage on and off is not invariant upon reversal of time, prompting lateral translations of the crystallites of torons within quasi-hexagonal periodically deformed lattices. We probe how these motions depend on voltage and frequency of oscillating field applied in an experimental geometry resembling that of liquid crystal displays. We study the inter-relations between synchronized deformations of the soft solitonic particles and their arrays and the ensuing dynamics and giant number fluctuations mediated by motions of crystallites, 5-7 defects pairs and grain boundaries in the orderly organizations of solitons. We discuss how our findings may lead to technological and fundamental science applications of dynamic self-assemblies of topologically protected but highly deformable particle-like solitons.