Ali Asif, Khaliq Hafiz Saad, Asad Aqsa, Akbar Jehan, Zubair Muhammad, Mehmood Muhammad Qasim, Massoud Yehia
MicroNano Lab, Deaprtment of Electrical Engineering, Information Technology University (ITU) of the Punjab Ferozepur Road Lahore 54600 Pakistan
School of Electronic and Electrical Engineering, Kyungpook National University Daegu 41566 Republic of Korea.
RSC Adv. 2023 Jul 12;13(30):20958-20965. doi: 10.1039/d3ra02331a. eCollection 2023 Jul 7.
Numerous applications of chiro-optical effects can be found in nanophotonics, including imaging and spin-selective absorption, particularly in sensing for separating and detecting chiral enantiomers. Flat single-layer metasurfaces composed of chiral or achiral sub-wavelength structures offer unique properties to manipulate the light due to their extraordinary light-matter interaction. However, at optical wavelengths, the generation of strong chirality is found to be challenging conventional chiral metasurface approaches. This work intends to design and optimize a dielectric chiral meta-nano-surface based on a diatomic design strategy to comprehend giant chiro-optical effects in the near-infrared (NIR) regime for potential application in circular dichroism (CD) spectroscopy. Instead of using a single chiral structure that limits the CD value at optical wavelengths, the proposed metasurface used a diatomic (two meta-atoms with distinct geometric parameters) chiral structure as a building block to significantly enhance the chiro-optical effect. Combining both meta-atoms in a single periodicity of the building block introduces constructive and destructive interferences to attain the maximum circular dichroism value exceeding 75%. Moreover, using multipolar resonance theory, the physics behind the generation of giant chiro-optical effects have also been investigated. The proposed dielectric chiral meta-platform based on the extra degree of freedom can find application in compact integrated optical setups for CD spectroscopy, enantiomer separation and detection, spin-dependent color filters, and beam splitters.
旋光效应在纳米光子学中有许多应用,包括成像和自旋选择性吸收,特别是在用于分离和检测手性对映体的传感方面。由手性或非手性亚波长结构组成的扁平单层超表面由于其非凡的光与物质相互作用而具有独特的光操控特性。然而,在光波长下,传统的手性超表面方法很难产生强手性。这项工作旨在基于双原子设计策略设计和优化一种介电手性超纳米表面,以理解近红外(NIR)波段的巨大旋光效应,用于圆二色性(CD)光谱的潜在应用。所提出的超表面不是使用在光波长下限制CD值的单一手性结构,而是使用双原子(具有不同几何参数的两个超原子)手性结构作为构建单元,以显著增强旋光效应。在构建单元的单个周期中结合这两个超原子会引入相长干涉和相消干涉,以获得超过75%的最大圆二色性值。此外,利用多极共振理论,还研究了巨大旋光效应产生背后的物理原理。所提出的基于额外自由度的介电手性超平台可应用于用于CD光谱、对映体分离和检测、自旋依赖型滤色器和分束器的紧凑型集成光学装置中。