Abbaszadeh Hamed, Fruchart Michel, van Saarloos Wim, Vitelli Vincenzo
Instituut-Lorentz, Universiteit Leiden, Leiden 2300 RA, The Netherlands.
James Franck Institute, University of Chicago, Chicago, IL 60637.
Proc Natl Acad Sci U S A. 2021 Jan 26;118(4). doi: 10.1073/pnas.2020525118.
Liquid crystals are complex fluids that allow exquisite control of light propagation thanks to their orientational order and optical anisotropy. Inspired by recent advances in liquid-crystal photo-patterning technology, we propose a soft-matter platform for assembling topological photonic materials that holds promise for protected unidirectional waveguides, sensors, and lasers. Crucial to our approach is to use spatial variations in the orientation of the nematic liquid-crystal molecules to emulate the time modulations needed in a so-called Floquet topological insulator. The varying orientation of the nematic director introduces a geometric phase that rotates the local optical axes. In conjunction with suitably designed structural properties, this geometric phase leads to the creation of topologically protected states of light. We propose and analyze in detail soft photonic realizations of two iconic topological systems: a Su-Schrieffer-Heeger chain and a Chern insulator. The use of soft building blocks potentially allows for reconfigurable systems that exploit the interplay between topological states of light and the underlying responsive medium.
液晶是一种复杂流体,由于其取向有序性和光学各向异性,能够实现对光传播的精确控制。受液晶光图案化技术近期进展的启发,我们提出了一个用于组装拓扑光子材料的软物质平台,该平台有望用于实现受保护的单向波导、传感器和激光器。我们方法的关键在于利用向列型液晶分子取向的空间变化来模拟所谓的弗洛凯拓扑绝缘体中所需的时间调制。向列型指向矢的变化取向引入了一个使局部光轴旋转的几何相位。结合适当设计的结构特性,这个几何相位会导致光的拓扑保护态的产生。我们详细提出并分析了两个标志性拓扑系统的软光子实现:一个苏-施里弗-黑格(Su-Schrieffer-Heeger)链和一个陈绝缘体。使用软构建块可能会实现可重构系统,该系统利用光的拓扑态与底层响应介质之间的相互作用。