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      Planar chiral metasurfaces with maximal and tunable chiroptical response driven by bound states in the continuum

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          Abstract

          Optical metasurfaces with high quality factors (Q-factors) of chiral resonances can boost substantially light-matter interaction for various applications of chiral response in ultrathin, active, and nonlinear metadevices. However, current approaches lack the flexibility to enhance and tune the chirality and Q-factor simultaneously. Here, we suggest a design of chiral metasurface supporting bound state in the continuum (BIC) and demonstrate experimentally chiroptical responses with ultra-high Q-factors and near-perfect circular dichroism (CD = 0.93) at optical frequencies. We employ the symmetry-reduced meta-atoms with high birefringence supporting winding elliptical eigenstate polarizations with opposite helicity. It provides a convenient way for achieving the maximal planar chirality tuned by either breaking in-plane structure symmetry or changing illumination angle. Beyond linear CD, we also achieved strong near-field enhancement CD and near-unitary nonlinear CD in the same planar chiral metasurface design with circular eigen-polarization. Sharply resonant chirality realized in planar metasurfaces promises various practical applications including chiral lasers and chiral nonlinear filters.

          Abstract

          Here, the authors employ the physics of chiral bound states in the continuum and suggest planar chiral metasurfaces with simultaneous ultrahigh quality factor and near-perfect circular dichroism in both linear regime and nonlinear regime.

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          Gold helix photonic metamaterial as broadband circular polarizer.

          We investigated propagation of light through a uniaxial photonic metamaterial composed of three-dimensional gold helices arranged on a two-dimensional square lattice. These nanostructures are fabricated via an approach based on direct laser writing into a positive-tone photoresist followed by electrochemical deposition of gold. For propagation of light along the helix axis, the structure blocks the circular polarization with the same handedness as the helices, whereas it transmits the other, for a frequency range exceeding one octave. The structure is scalable to other frequency ranges and can be used as a compact broadband circular polarizer.
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            Bound states in the continuum

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              Observation of trapped light within the radiation continuum.

              The ability to confine light is important both scientifically and technologically. Many light confinement methods exist, but they all achieve confinement with materials or systems that forbid outgoing waves. These systems can be implemented by metallic mirrors, by photonic band-gap materials, by highly disordered media (Anderson localization) and, for a subset of outgoing waves, by translational symmetry (total internal reflection) or by rotational or reflection symmetry. Exceptions to these examples exist only in theoretical proposals. Here we predict and show experimentally that light can be perfectly confined in a patterned dielectric slab, even though outgoing waves are allowed in the surrounding medium. Technically, this is an observation of an 'embedded eigenvalue'--namely, a bound state in a continuum of radiation modes--that is not due to symmetry incompatibility. Such a bound state can exist stably in a general class of geometries in which all of its radiation amplitudes vanish simultaneously as a result of destructive interference. This method to trap electromagnetic waves is also applicable to electronic and mechanical waves.
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                Author and article information

                Contributors
                zilandeng@jnu.edu.cn
                jjli@iphy.ac.cn
                xiangpingli@jnu.edu.cn
                Journal
                Nat Commun
                Nat Commun
                Nature Communications
                Nature Publishing Group UK (London )
                2041-1723
                15 July 2022
                15 July 2022
                2022
                : 13
                : 4111
                Affiliations
                [1 ]GRID grid.258164.c, ISNI 0000 0004 1790 3548, Guangdong Provincial Key Laboratory of Optical Fiber Sensing and Communications, Institute of Photonics Technology, , Jinan University, ; 510632 Guangzhou, China
                [2 ]GRID grid.458438.6, ISNI 0000 0004 0605 6806, Beijing National Laboratory for Condensed Matter Physics, , Institute of Physics, Chinese Academy of Sciences, ; 100191 Beijing, China
                [3 ]GRID grid.59025.3b, ISNI 0000 0001 2224 0361, School of Electrical and Electronic Engineering, , Nanyang Technological University, ; Singapore, 639798 Singapore
                [4 ]GRID grid.456297.b, ISNI 0000 0004 5895 2063, Photonics Initiative, , Advanced Science Research Center, City University of New York, ; New York, NY 10031 USA
                [5 ]GRID grid.4280.e, ISNI 0000 0001 2180 6431, Department of Electrical and Computer Engineering, , National University of Singapore, ; Kent Ridge, 117583 Republic of Singapore
                [6 ]GRID grid.1001.0, ISNI 0000 0001 2180 7477, Nonlinear Physics Center, Research School of Physics, , Australian National University, ; Canberra, ACT 2601 Australia
                Author information
                http://orcid.org/0000-0003-3861-6014
                http://orcid.org/0000-0003-3723-9632
                http://orcid.org/0000-0002-3023-9632
                http://orcid.org/0000-0002-1508-9891
                http://orcid.org/0000-0002-6605-500X
                http://orcid.org/0000-0002-4297-5274
                http://orcid.org/0000-0002-3410-812X
                http://orcid.org/0000-0003-0955-2613
                Article
                31877
                10.1038/s41467-022-31877-1
                9287326
                35840567
                3091d206-7d1c-4586-a8a0-09bc91953f14
                © The Author(s) 2022

                Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.

                History
                : 22 December 2021
                : 6 July 2022
                Categories
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                Custom metadata
                © The Author(s) 2022

                Uncategorized
                nanophotonics and plasmonics,sub-wavelength optics,metamaterials
                Uncategorized
                nanophotonics and plasmonics, sub-wavelength optics, metamaterials

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