Mai Zhijian, Yuan Ye, Tai Jung-Shen B, Senyuk Bohdan, Liu Bing, Li Hao, Wang Yao, Zhou Guofu, Smalyukh Ivan I
Guangdong Provincial Key Laboratory of Optical Information Materials and Technology, National Center for International Research on Green Optoelectronics, Institute of Electronic Paper Displays, South China Academy of Advanced Optoelectronics, South China Normal University, Guangzhou, 510006, P. R. China.
Department of Physics and Soft Materials Research Center, University of Colorado, Boulder, CO, 80309, USA.
Adv Sci (Weinh). 2021 Nov;8(22):e2102854. doi: 10.1002/advs.202102854. Epub 2021 Sep 20.
Dispersing inorganic colloidal nanoparticles within nematic liquid crystals provides a versatile platform both for forming new soft matter phases and for predefining physical behavior through mesoscale molecular-colloidal self-organization. However, owing to formation of particle-induced singular defects and complex elasticity-mediated interactions, this approach has been implemented mainly just for colloidal nanorods and nanoplatelets, limiting its potential technological utility. Here, orientationally ordered nematic colloidal dispersions are reported of pentagonal gold bipyramids that exhibit narrow but controlled polarization-dependent surface plasmon resonance spectra and facile electric switching. Bipyramids tend to orient with their C rotation symmetry axes along the nematic director, exhibiting spatially homogeneous density within aligned samples. Topological solitons, like heliknotons, allow for spatial reorganization of these nanoparticles according to elastic free energy density within their micrometer-scale structures. With the nanoparticle orientations slaved to the nematic director and being switched by low voltages ≈1 V within a fraction of a second, these plasmonic composite materials are of interest for technological uses like color filters and plasmonic polarizers, as well as may lead to the development of unusual nematic phases, like pentatic liquid crystals.
将无机胶体纳米粒子分散在向列型液晶中,为形成新的软物质相以及通过中尺度分子 - 胶体自组装预先确定物理行为提供了一个通用平台。然而,由于形成了粒子诱导的奇异缺陷和复杂的弹性介导相互作用,这种方法主要仅应用于胶体纳米棒和纳米片,限制了其潜在的技术应用。在此,报道了五角形金双锥的取向有序向列型胶体分散体,其呈现出窄但可控的偏振依赖表面等离子体共振光谱以及易于实现的电切换。双锥倾向于使其C旋转对称轴沿向列指向矢取向,在排列的样品中表现出空间均匀的密度。拓扑孤子,如螺旋纽结子,允许这些纳米粒子根据其微米尺度结构内的弹性自由能密度进行空间重组。由于纳米粒子的取向受向列指向矢控制,并能在不到一秒的时间内通过约1 V的低电压进行切换,这些等离子体复合材料在诸如滤色器和等离子体偏振器等技术应用中具有吸引力,并且可能会导致诸如五液晶等不寻常向列相的发展。