Kityk Andriy V, Nowak Marcjan, Reben Manuela, Pawlik Piotr, Lelonek Monika, Andrushchak Anatoliy, Shchur Yaroslav, Andrushchak Nazariy, Huber Patrick
Faculty of Electrical Engineering, Czestochowa University of Technology, Al. Armii Krajowej 17, 42-200 Czestochowa, Poland.
Faculty of Materials Science and Ceramics, AGH-University of Science and Technology, al. Mickiewicza 30, 30-059 Cracow, Poland.
Nanoscale. 2021 Nov 18;13(44):18714-18725. doi: 10.1039/d1nr04282c.
Photonic metamaterials with properties unattainable in base materials are already beginning to revolutionize optical component design. However, their exceptional characteristics are often static, as artificially engineered into the material during the fabrication process. This limits their application for in-operando adjustable optical devices and active optics in general. Here, for a hybrid material consisting of a liquid crystal-infused nanoporous solid, we demonstrate active and dynamic control of its meta-optics by applying alternating electric fields parallel to the long axes of its cylindrical pores. First-harmonic Pockels and second-harmonic Kerr birefringence responses, strongly depending on the excitation frequency and temperature, are observed in a frequency range from 50 Hz to 50 kHz. This peculiar behavior is quantitatively traced by a Landau-De Gennes free energy analysis to an order-disorder orientational transition of the rod-like mesogens and intimately related changes in the molecular mobilities and polar anchoring at the solid walls on the single-pore, meta-atomic scale. Thus, our study provides evidence that liquid crystal-infused nanopores exhibit integrated multi-physical couplings and reversible phase changes that make them particularly promising for the design of photonic metamaterials with thermo-electrically tunable birefringence in the emerging field of space-time metamaterials aiming at full spatio-temporal control of light.
具有基体材料无法实现的特性的光子超材料已开始彻底改变光学元件设计。然而,它们的特殊特性通常是静态的,因为是在制造过程中人工设计到材料中的。这总体上限制了它们在操作中可调节光学器件和有源光学中的应用。在此,对于一种由注入液晶的纳米多孔固体组成的混合材料,我们通过施加平行于其圆柱形孔长轴的交变电场,展示了对其超光学的主动和动态控制。在50赫兹至50千赫的频率范围内,观察到强烈依赖于激发频率和温度的一次谐波普克尔效应和二次谐波克尔双折射响应。通过朗道 - 德热纳自由能分析,这种特殊行为在单孔、元原子尺度上被定量追溯到棒状液晶分子的有序 - 无序取向转变以及分子迁移率和固体壁上极性锚定的密切相关变化。因此,我们的研究提供了证据,表明注入液晶的纳米孔表现出集成的多物理耦合和可逆相变,这使得它们在旨在实现对光的全时空控制的时空超材料新兴领域中,对于具有热电可调双折射的光子超材料设计特别有前景。