Tian Ma, Jiangkun Tian, Wei Sang, Doudou Wang and Jun Li
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引用次数: 0
摘要
手性元表面因其在需要手性光物质相互作用的各种应用中的巨大潜力而备受关注。最近,在基于连续体中束缚态(BICs)概念的机制推动下,通过打破平面元表面的反转对称性,表现出了高 Q 因子的手性共振。然而,这些手性元表面的光学手性通常无法忍受结构几何,尤其是几何不对称。在这里,我们提出了一种在全介电元表面中具有强光学手性的新型手性准 BIC。通过同时打破平面内旋转对称性和镜像对称性,手性元表面在太赫兹频率下显示出增强的气色共振,具有接近统一的 CD(∼0.996)和高 Q 因子(∼2274)。基于数值模拟的进一步分析表明,当存在大范围的几何不对称时,千光共振的 CD 对几何不对称具有非凡的容忍性,而相应的 Q 因子也会相应地发生调制。这些结果可能会开发出一种操纵先进光学手性的新方法,用于需要强 CD 和增强光物质相互作用的潜在应用。
High Q chiroptical responses with maximum chirality in all-dielectric metasurfaces driven by quasi-bound states in the continuum
Chiral metasurfaces have attracted considerable attention because of their immense potential for diverse applications requiring chiral light-matter interactions. Recently, boosted by a mechanism based on the concept of bound states in the continuum (BICs), high Q factor chiroptical resonances have been exhibited by breaking the inversion symmetries of planar metasurfaces. However, the optical chirality of these chiral metasurfaces is generally intolerable with respect to the structural geometries, especially the geometric asymmetry. Here, we present a novel chiral quasi-BIC with strong optical chirality in an all-dielectric metasurface. By simultaneously breaking the in-plane rotational and mirror symmetries, the chiral metasurface shows enhanced chiroptical resonances with near-unity CD (∼0.996) and high Q factors (∼2274) at terahertz frequencies. Further analyses based on numerical simulations reveal that the CD of the chiroptical resonance depicts exceptional remarkable tolerableness to the geometry asymmetry when are present in a broad range, while the corresponding Q factor is modulated accordingly. The results may develop a novel approach to manipulating the advanced optical chirality for potential applications requiring strong CD with enhanced light-matter interactions.
期刊介绍:
Journal of Optics publishes new experimental and theoretical research across all areas of pure and applied optics, both modern and classical. Research areas are categorised as:
Nanophotonics and plasmonics
Metamaterials and structured photonic materials
Quantum photonics
Biophotonics
Light-matter interactions
Nonlinear and ultrafast optics
Propagation, diffraction and scattering
Optical communication
Integrated optics
Photovoltaics and energy harvesting
We discourage incremental advances, purely numerical simulations without any validation, or research without a strong optics advance, e.g. computer algorithms applied to optical and imaging processes, equipment designs or material fabrication.