• Photonics Research
  • Vol. 12, Issue 3, 534 (2024)
Yicheng Li1、2、3, Shicheng Wan1、2、3, Shaoxuan Deng1、2, Zhengwei Deng1、2, Bo Lv1、2, Chunying Guan1、2, Jun Yang2、4、6, Andrey Bogdanov3、5, Pavel Belov3, and Jinhui Shi1、2、*
Author Affiliations
  • 1Key Laboratory of Photonic Materials and Devices Physics for Oceanic Applications, Ministry of Industry and Information Technology, College of Physics and Optoelectronic Engineering, Harbin Engineering University, Harbin 150001, China
  • 2Key Laboratory of In-Fiber Integrated Optics of Ministry of Education, College of Physics and Optoelectronic Engineering, Harbin Engineering University, Harbin 150001, China
  • 3School of Physics and Engineering, ITMO University, St. Petersburg 197101, Russia
  • 4School of Information Engineering, Guangdong University of Technology, Guangzhou 510008, China
  • 5Qingdao Innovation and Development Center, Harbin Engineering University, Qingdao 266000, China
  • 6e-mail: yangj@gdut.edu.cn
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    DOI: 10.1364/PRJ.510300 Cite this Article Set citation alerts
    Yicheng Li, Shicheng Wan, Shaoxuan Deng, Zhengwei Deng, Bo Lv, Chunying Guan, Jun Yang, Andrey Bogdanov, Pavel Belov, Jinhui Shi. Independent control of circularly polarized light with exceptional topological phase coding metasurfaces[J]. Photonics Research, 2024, 12(3): 534 Copy Citation Text show less
    References

    [1] N. Yu, P. Genevet, M. A. Kats. Light propagation with phase discontinuities: generalized laws of reflection and refraction. Science, 334, 333-337(2011).

    [2] H.-T. Chen, A. J. Taylor, N. Yu. A review of metasurfaces: physics and applications. Rep. Prog. Phys., 79, 076401(2016).

    [3] S. B. Glybovski, S. A. Tretyakov, P. A. Belov. Metasurfaces: from microwaves to visible. Phys. Rep., 634, 1-72(2016).

    [4] T. J. Cui, S. Liu, L. Zhang. Information metamaterials and metasurfaces. J. Mater. Chem. C, 5, 3644-3668(2017).

    [5] A. S. Kupriianov, Y. Xu, A. Sayanskiy. Metasurface engineering through bound states in the continuum. Phys. Rev. Appl., 12, 014024(2019).

    [6] S. Sun, Q. He, S. Xiao. Gradient-index meta-surfaces as a bridge linking propagating waves and surface waves. Nat. Mater., 11, 426-431(2012).

    [7] L. Deng, J. Deng, Z. Guan. Malus-metasurface-assisted polarization multiplexing. Light Sci. Appl., 9, 101(2020).

    [8] S. Zhang, P. Huo, W. Zhu. Broadband detection of multiple spin and orbital angular momenta via dielectric metasurface. Laser Photonics Rev., 14, 2000062(2020).

    [9] L. Li, Z. Liu, X. Ren. Metalens-array–based high-dimensional and multiphoton quantum source. Science, 368, 1487-1490(2020).

    [10] Y. Bao, J. Yan, X. Yang. Point-source geometric metasurface holography. Nano Lett., 21, 2332-2338(2021).

    [11] E. Minerbi, S. Keren-Zur, T. Ellenbogen. Nonlinear metasurface Fresnel zone plates for terahertz generation and manipulation. Nano Lett., 19, 6072-6077(2019).

    [12] T. J. Cui, M. Q. Qi, X. Wan. Coding metamaterials, digital metamaterials and programmable metamaterials. Light Sci. Appl., 3, e218(2014).

    [13] S. Liu, T. J. Cui, Q. Xu. Anisotropic coding metamaterials and their powerful manipulation of differently polarized terahertz waves. Light Sci. Appl., 5, e16076(2016).

    [14] L. Li, T. J. Cui, W. Ji. Electromagnetic reprogrammable coding-metasurface holograms. Nat. Commun., 8, 197(2017).

    [15] J. Zhao, X. Yang, J. Y. Dai. Programmable time-domain digital-coding metasurface for non-linear harmonic manipulation and new wireless communication systems. Natl. Sci. Rev., 6, 231-238(2019).

    [16] J. Han, X. Cao, J. Gao. Broadband dual-circular polarized coding metasurfaces and their powerful manipulation of differently circular polarizations. Opt. Express, 27, 34141-34153(2019).

    [17] C. Zheng, J. Li, G. Wang. All-dielectric chiral coding metasurface based on spin-decoupling in terahertz band. Nanophotonics, 10, 1347-1355(2021).

    [18] Y. Gou, H. F. Ma, L. W. Wu. Non-interleaved polarization-frequency multiplexing metasurface for multichannel holography. Adv. Opt. Mater., 10, 2201142(2022).

    [19] J. P. Balthasar Mueller, N. A. Rubin, R. C. Devlin. Metasurface polarization optics: independent phase control of arbitrary orthogonal states of polarization. Phys. Rev. Lett., 118, 113901(2017).

    [20] Y. Hu, L. Li, Y. Wang. Trichromatic and tripolarization-channel holography with noninterleaved dielectric metasurface. Nano Lett., 20, 994-1002(2020).

    [21] R. Jin, L. Deng, L. Tang. Decoupled phase modulation for circularly polarized light via chiral metasurfaces. ACS Photonics, 10, 155-161(2023).

    [22] C. M. Bender, S. Boettcher. Real spectra in non-Hermitian Hamiltonians having PT symmetry. Phys. Rev. Lett., 80, 5243-5246(1998).

    [23] C. Wang, W. R. Sweeney, A. D. Stone. Coherent perfect absorption at an exceptional point. Science, 373, 1261-1265(2021).

    [24] Q. Zhou, J. Wu, Z. Pu. Observation of geometry-dependent skin effect in non-Hermitian phononic crystals with exceptional points. Nat. Commun., 14, 4569(2023).

    [25] J.-H. Park, A. Ndao, W. Cai. Symmetry-breaking-induced plasmonic exceptional points and nanoscale sensing. Nat. Phys., 16, 462-468(2020).

    [26] W. He, Y. Hu, Z. Ren. Transient loss-induced non-Hermitian degeneracies for ultrafast terahertz metadevices. Adv. Sci., 10, 2304972(2023).

    [27] M. Lawrence, N. Xu, X. Zhang. Manifestation of PT symmetry breaking in polarization space with terahertz metasurfaces. Phys. Rev. Lett., 113, 093901(2014).

    [28] Q. Song, M. Odeh, J. Zúñiga-Pérez. Plasmonic topological metasurface by encircling an exceptional point. Science, 373, 1133-1137(2021).

    [29] X. Wu, J. Zhu, F. Lin. Study of a high-index dielectric non-Hermitian metasurface and its application in holograms. ACS Omega, 7, 44743-44749(2022).

    [30] S. Baek, S. H. Park, D. Oh. Non-Hermitian chiral degeneracy of gated graphene metasurfaces. Light Sci. Appl., 12, 87(2023).

    [31] Y. Li, Z. Deng, C. Qin. Bifunctional sensing based on an exceptional point with bilayer metasurfaces. Opt. Express, 31, 492-501(2023).

    [32] P. Fu, S. Du, W. Lan. Deep learning enabled topological design of exceptional points for multi-optical-parameter control. Commun. Phys., 6, 254(2023).

    [33] Y. Xu, L. Li, H. Jeong. Subwavelength control of light transport at the exceptional point by non-Hermitian metagratings. Sci. Adv., 9, eadf3510(2023).

    [34] Z. Zhou, B. Jia, N. Wang. Observation of perfectly-chiral exceptional point via bound state in the continuum. Phys. Rev. Lett., 130, 116101(2023).

    [35] A. D. Rakić. Algorithm for the determination of intrinsic optical constants of metal films: application to aluminum. Appl. Opt., 34, 4755-4767(1995).

    [36] Ş. K. Özdemir, S. Rotter, F. Nori. Parity–time symmetry and exceptional points in photonics. Nat. Mater., 18, 783-798(2019).

    [37] R. Colom, E. Mikheeva, K. Achouri. Crossing of the branch cut: the topological origin of a universal 2π-phase retardation in non-Hermitian metasurfaces. Laser Photonics Rev., 17, 2200976(2023).

    [38] W. Luo, S. Xiao, Q. He. Photonic spin Hall effect with nearly 100% efficiency. Adv. Opt. Mater., 3, 1102-1108(2015).

    Yicheng Li, Shicheng Wan, Shaoxuan Deng, Zhengwei Deng, Bo Lv, Chunying Guan, Jun Yang, Andrey Bogdanov, Pavel Belov, Jinhui Shi. Independent control of circularly polarized light with exceptional topological phase coding metasurfaces[J]. Photonics Research, 2024, 12(3): 534
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