论文标题
使用块共聚物在液晶壳中对导演场的动态调整
Dynamic tuning of the director field in liquid crystal shells using block copolymers
论文作者
论文摘要
当列液晶(LC)局限于自闭合球形外壳时,拓扑约束会产生有趣的后果,这些后果严重取决于LC在壳中的排列方式。我们证明了对齐对齐的可逆动态调整,从而证明了由非离子两亲性嵌段共聚物pluronic F127稳定的列Nematic LC壳的拓扑。在列前阶段,导演与界面相切,但是在接近列神经 - 异位性过渡的温度TNI时,主任将重新调整到正常状态。我们将其连接到几乎独立于导演方向的界面张力之间的微妙相互作用,以及依赖于壳体中的LC的配置依赖性弹性变形能。该过程主要是由加热诱导的列级参数的降低引起的,因此,调整温度分别在较高和低TNI的LC之间差异几十个度。在外部的正面壳上,重新调整的温度总是比内部负面弯曲的温度低,从而在加热时产生了复杂的拓扑重构。通过数学建模和计算机模拟补充实验研究,我们识别并研究了三种不同的轨迹,这些轨迹以它们在初始切线对齐的壳中的拓扑缺陷的配置为特色。我们的结果发现了LC对弯曲限制的复杂响应的一个新方面,表明LC的顺序可以影响对齐方式,从而影响系统的拓扑结构。他们还揭示了两亲块共聚物稳定剂的潜力,可以使LC壳构型的连续可调节性,为拓扑动力学的深入研究开门,以及在例如感应和程序性软执行器中进行的新颖应用。
When a nematic liquid crystal (LC) is confined on a self-closing spherical shell, topological constraints arise with intriguing consequences that depend critically on how the LC is aligned in the shell. We demonstrate reversible dynamic tuning of the alignment, and thereby the topology, of nematic LC shells stabilized by the nonionic amphiphilic block copolymer Pluronic F127. Deep in the nematic phase, the director is tangential to the interface, but upon approaching the temperature TNI of the nematic-isotropic transition, the director realigns to normal. We link this to a delicate interplay between an interfacial tension that is nearly independent of director orientation, and the configuration-dependent elastic deformation energy of an LC confined in a shell. The process is primarily triggered by the heating-induced reduction of the nematic order parameter, hence realignment temperatures differ by several tens of degrees between LCs with high and low TNI, respectively. The temperature of realignment is always lower on the positive-curved shell outside than at the negative-curved inside, yielding a complex topological reconfiguration on heating. Complementing experimental investigations with mathematical modeling and computer simulations, we identify and investigate three different trajectories, distinguished by their configurations of topological defects in the initial tangential-aligned shell. Our results uncover a new aspect of the complex response of LCs to curved confinement, demonstrating that the order of the LC itself can influence the alignment and thereby the topology of the system. They also reveal the potential of amphiphilic block copolymer stabilizers for enabling continuous tunability of LC shell configuration, opening doors for in-depth studies of topological dynamics as well as novel applications in, e.g., sensing and programmed soft actuators.