Ma Zhenhe, Meng Xianghe, Liu Xiaodi, Si Guangyuan, Liu Yan Jun
College of Information Science and Engineering, Northeastern University, Shenyang 110004, China.
Melbourne Centre for Nanofabrication, Victorian Node of the Australian National Fabrication Facility, Clayton, VIC 3168, Australia.
Nanomaterials (Basel). 2018 Oct 23;8(11):871. doi: 10.3390/nano8110871.
Inspired by the anisotropic molecular shape and tunable alignment of liquid crystals (LCs), investigations on hybrid nanodevices which combine LCs with plasmonic metasurfaces have received great attention recently. Since LCs possess unique electro-optical properties, developing novel dynamic optical components by incorporating nematic LCs with nanostructures offers a variety of practical applications. Owing to the large birefringence of LCs, the optical properties of metamaterials can be electrically or optically modulated over a wide range. In this review article, we show different elegant designs of metasurface based nanodevices integrated into LCs and explore the tuning factors of transmittance/extinction/scattering spectra. Moreover, we review and classify substantial tunable devices enabled by LC-plasmonic interactions. These dynamically tunable optoelectronic nanodevices and components are of extreme importance, since they can enable a significant range of applications, including ultra-fast switching, modulating, sensing, imaging, and waveguiding. By integrating LCs with two dimensional metasurfaces, one can manipulate electromagnetic waves at the nanoscale with dramatically reduced sizes. Owing to their special electro-optical properties, recent efforts have demonstrated that more accurate manipulation of LC-displays can be engineered by precisely controlling the alignment of LCs inside small channels. In particular, device performance can be significantly improved by optimizing geometries and the surrounding environmental parameters.
受液晶(LC)各向异性分子形状和可调取向的启发,将液晶与等离子体超表面相结合的混合纳米器件的研究近来备受关注。由于液晶具有独特的电光特性,通过将向列型液晶与纳米结构结合来开发新型动态光学元件具有多种实际应用。由于液晶具有较大的双折射,超材料的光学特性可以在很宽的范围内进行电调制或光调制。在这篇综述文章中,我们展示了集成到液晶中的基于超表面的纳米器件的不同精妙设计,并探讨了透射率/消光/散射光谱的调谐因素。此外,我们对由液晶 - 等离子体相互作用实现的大量可调谐器件进行了综述和分类。这些动态可调谐的光电器件和组件极为重要,因为它们能够实现广泛的应用,包括超快开关、调制、传感、成像和波导。通过将液晶与二维超表面集成,可以在纳米尺度上以显著减小的尺寸操纵电磁波。由于其特殊的电光特性,最近的研究表明,通过精确控制小通道内液晶的取向,可以设计出对液晶显示器更精确的操纵。特别是,通过优化几何形状和周围环境参数,可以显著提高器件性能。