Photonic crystal slabs with maximal chiroptical response empowered by bound states in the continuum

IF 6.6 1区 物理与天体物理 Q1 OPTICS Photonics Research Pub Date : 2023-11-01 DOI:10.1364/prj.497954
Qilin Duan, Yali Zeng, Yuhang Yin, Jinying Xu, Zhining Chen, Zhanlei Hao, Huanyang Chen, and Yineng Liu
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Abstract

To enhance the strength of chiral light–matter interaction for practical applications, the chirality and quality factors (Q-factors) of current methods need to be strengthened simultaneously. Here, we propose a design of photonic crystal slabs (PhCs) supporting chiral bound states in the continuum (BICs) of transverse electric (TE) and transverse magnetic (TM) modes, exhibiting maximal chiroptical responses with high Q-factors and near-unity circular dichroism (CD=0.98). Different from the past, the PhCs we employed only have reduced in-plane symmetry and can support simultaneously chiral quasi-BICs (q-BICs) of TE and TM mode with two-dimensional ultra-strong external and internal chirality. Based on the temporal coupled-mode theory, two analytical expressions of CD of chiral q-BICs response are revealed, which are consistent with the simulation results. Furthermore, we elucidate these results within the charge-current multipole expansion framework and demonstrate that the co-excitation of higher-order multipole electric/magnetic modes is responsible for near-perfect CD. Our results may provide more flexible opportunities for various applications requiring high Q-factors and chirality control, such as chiral lasing, chiral sensing, and enantiomer separation.
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连续介质中束缚态赋予最大驰光学响应的光子晶体板
为了提高手性光物质相互作用的强度以用于实际应用,需要同时加强现有方法的手性和质量因子(QQ因子)。在这里,我们提出了一种在横电(TE)和横磁(TM)模式的连续体(BICs)中支持手性束缚态的光子晶体板(PhCs)的设计,该光子晶体板在高QQ因子和近单位圆二色性(CD=0.98CD=0.98)下表现出最大的手性光学响应,我们使用的PhCs仅具有降低的平面内对称性,并且可以同时支持具有二维超强外手性和内手性的TE和TM模式的手性准BICs(qq-BIC)。基于时间耦合模理论,揭示了手性qq-BICs响应CD的两个解析表达式,与模拟结果一致。此外,我们在电荷-电流多极展开框架内阐明了这些结果,并证明了高阶多极电/磁模式的共激发是接近完美CD的原因。我们的结果可能为需要高QQ因子和手性控制的各种应用提供更灵活的机会,如手性激光、手性传感、,和对映体分离。
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来源期刊
CiteScore
13.60
自引率
5.30%
发文量
1325
期刊介绍: Photonics Research is a joint publishing effort of the OSA and Chinese Laser Press.It publishes fundamental and applied research progress in optics and photonics. Topics include, but are not limited to, lasers, LEDs and other light sources; fiber optics and optical communications; imaging, detectors and sensors; novel materials and engineered structures; optical data storage and displays; plasmonics; quantum optics; diffractive optics and guided optics; medical optics and biophotonics; ultraviolet and x-rays; terahertz technology.
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