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由连续统中本征手性准束缚态驱动的可调谐选择性光吸收超表面设计

Design of tunable selective light-absorbing metasurfaces driven by intrinsically chiral quasi-bound states in the continuum.

作者信息

Lv Shuyuan, Hu Fei, Luo Wenfeng, Xu Haifeng, An Lan

出版信息

Opt Express. 2024 Aug 12;32(17):30053-30064. doi: 10.1364/OE.530418.

Abstract

Chiral metasurfaces with high quality factors (Q-factors) and strong circular dichroism (CD) are excellent platforms for studying chiral optical response. Here, a design is proposed of an intrinsic chiral silicon metasurface driven by bound states in the continuum (BIC), with ultra-high Q-factor (Q = 3722) and chirality response close to the unit CD (CD > 0.99). By breaking the in-plane and out-of-plane symmetry of the structure, the intrinsic chirality based on BIC can be precisely controlled. In addition to studying intrinsic chirality, we have also achieved extrinsic chirality by obliquely incident circularly polarized light without introducing out-of-plane asymmetry. Moreover, we introduce graphene into the intrinsically chiral metasurface to form a graphene-Si hybridized metasurface. Selective absorption of intensity-controlled right-handed/left-handed circularly polarized light (RCP/LCP) was achieved by actively tuning the Fermi level and out-of-plane tilt angle of the graphene structure based on coupled-mode theory. Our research provides another insight into the application of intrinsic optical chirality, which is expected to be widely used in the fields of optical filters, polarization detectors, and chiral imaging.

摘要

具有高品质因数(Q 因子)和强圆二色性(CD)的手性超表面是研究手性光学响应的优秀平台。在此,提出了一种由连续统中的束缚态(BIC)驱动的本征手性硅超表面设计,其具有超高 Q 因子(Q = 3722)且手性响应接近单位 CD(CD > 0.99)。通过打破结构的面内和面外对称性,可以精确控制基于 BIC 的本征手性。除了研究本征手性外,我们还通过斜入射圆偏振光实现了非本征手性,而无需引入面外不对称性。此外,我们将石墨烯引入本征手性超表面以形成石墨烯 - 硅杂化超表面。基于耦合模理论,通过主动调节石墨烯结构的费米能级和面外倾斜角,实现了强度可控的右旋/左旋圆偏振光(RCP/LCP)的选择性吸收。我们的研究为固有光学手性的应用提供了另一种见解,有望在光学滤波器、偏振探测器和手性成像等领域得到广泛应用。

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