• Photonics Research
  • Vol. 10, Issue 11, 2526 (2022)
Xuan Xiao, Yanxin Lu, Jiayi Jiang, and Yihang Chen*
Author Affiliations
  • Guangdong Provincial Key Laboratory of Quantum Engineering and Quantum Materials, School of Physics and Telecommunication Engineering, South China Normal University, Guangzhou 510006, China
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    DOI: 10.1364/PRJ.465119 Cite this Article Set citation alerts
    Xuan Xiao, Yanxin Lu, Jiayi Jiang, Yihang Chen. Manipulation of optical bound states in the continuum in a metal-dielectric hybrid nanostructure[J]. Photonics Research, 2022, 10(11): 2526 Copy Citation Text show less
    References

    [1] D. G. Baranov, M. Wersall, J. Cuadra, T. J. Antosiewicz, T. Shegai. Novel nanostructures and materials for strong light–matter interactions. ACS Photon., 5, 24-42(2018).

    [2] L. Novotny, B. Hecht, D. W. Pohl. Interference of locally excited surface plasmons. J. Appl. Phys., 81, 1798-1806(1997).

    [3] R. Liu, Z. K. Zhou, Y. C. Yu, T. Zhang, H. Wang, G. Liu, Y. Wei, H. Chen, X. H. Wang. Strong light-matter interactions in single open plasmonic nanocavities at the quantum optics limit. Phys. Rev. Lett., 118, 237401(2017).

    [4] C. Zhang, Y. Xu, J. Liu, J. Li, J. Xiang, H. Li, J. Li, Q. Dai, S. Lan, A. E. Miroshnichenko. Lighting up silicon nanoparticles with Mie resonances. Nat. Commun., 9, 2964(2018).

    [5] J. Xiang, J. Li, Z. Zhou, S. Jiang, J. Chen, Q. Dai, S. Tie, S. Lan, X. Wang. Manipulating the orientations of the electric and magnetic dipoles induced in silicon nanoparticles for multicolor display. Laser Photon. Rev., 12, 1800032(2018).

    [6] R. F. Oulton, V. J. Sorger, T. Zentgraf, R. M. Ma, C. Gladden, L. Dai, G. Bartal, X. Zhang. Plasmon lasers at deep subwavelength scale. Nature, 461, 629-632(2009).

    [7] Z. Huang, J. Wang, Z. Liu, G. Xu, Y. Fan, H. Zhong, B. Cao, C. Wang, K. Xu. Strong-field-enhanced spectroscopy in silicon nanoparticle electric and magnetic dipole resonance near a metal surface. J. Phys. Chem. C, 119, 28127-28135(2015).

    [8] S. Chen, Y. Zhang, T. M. Shih, W. Yang, S. Hu, X. Hu, J. Li, B. Ren, B. Mao, Z. Yang, Z. Tian. Plasmon-induced magnetic resonance enhanced Raman spectroscopy. Nano Lett., 18, 2209-2216(2018).

    [9] J. V. Neumann, E. P. Wigner. Über merkwürdige diskrete Eigenwerte(1993).

    [10] D. C. Marinica, A. G. Borisov, S. V. Shabanov. Bound states in the continuum in photonics. Phys. Rev. Lett., 100, 183902(2008).

    [11] C. W. Hsu, B. Zhen, A. D. Stone, J. D. Joannopoulos, M. Soljačić. Bound states in the continuum. Nat. Rev. Mater., 1, 16048(2016).

    [12] Y. Plotnik, O. Peleg, F. Dreisow, M. Heinrich, S. Nolte, A. Szameit, M. Segev. Experimental observation of optical bound states in the continuum. Phys. Rev. Lett., 107, 183901(2011).

    [13] M. V. Rybin, K. L. Koshelev, Z. F. Sadrieva, K. B. Samusev, A. A. Bogdanov, M. F. Limonov, Y. S. Kivshar. High-Q supercavity modes in subwavelength dielectric resonators. Phys. Rev. Lett., 119, 243901(2017).

    [14] A. A. Bogdanov, K. L. Koshelev, P. V. Kapitanova, M. V. Rybin, S. A. Gladyshev, Z. F. Sadrieva, K. B. Samusev, Y. S. Kivshar, M. F. Limonov. Bound states in the continuum and Fano resonances in the strong mode coupling regime. Adv. Photon., 1, 016001(2019).

    [15] L. Huang, L. Xu, M. Rahmani, D. N. Neshev, A. E. Miroshnichenko. Pushing the limit of high-Q mode of a single dielectric nanocavity. Adv. Photon., 3, 016004(2021).

    [16] L. Carletti, K. Koshelev, C. D. Angelis, Y. Kivshar. Giant nonlinear response at the nanoscale driven by bound states in the continuum. Phys. Rev. Lett., 121, 033903(2018).

    [17] A. Kodigala, T. Lepetit, Q. Gu, B. Bahari, Y. Fainman, B. Kanté. Lasing action from photonic bound states in continuum. Nature, 541, 196-199(2017).

    [18] V. Mylnikov, S. T. Ha, Z. Pan, V. Valuckas, R. P. Domínguez, H. V. Demir, A. I. Kuznetsov. Lasing action in single subwavelength particles supporting supercavity modes. ACS Nano., 14, 7338-7346(2020).

    [19] K. Koshelev, A. Bogdanov, Y. Kivshar. Meta-optics and bound states in the continuum. Sci. Bull., 64, 836-842(2019).

    [20] S. I. Azzam, V. M. Shalaev, A. Boltasseva, A. V. Kildishev. Formation of bound states in the continuum in hybrid plasmonic-photonic systems. Phys. Rev. Lett., 121, 253901(2018).

    [21] Y. Liang, K. Koshelev, F. Zhang, H. Lin, S. Lin, J. Wu, B. Jia, Y. Kivshar. Bound states in the continuum in anisotropic plasmonic metasurfaces. Nano Lett., 20, 6351-6356(2020).

    [22] J. Xiang, Y. Xu, J. D. Chen, S. Lan. Tailoring the spatial localization of bound state in the continuum in plasmonic-dielectric hybrid system. Nanophotonics, 9, 133-142(2020).

    [23] M. Kang, S. Zhang, M. Xiao, H. Xu. Merging bound states in the continuum at off-high symmetry points. Phys. Rev. Lett., 126, 117402(2021).

    [24] C. W. Hsu, B. Zhen, J. Lee, S. L. Chua, S. G. Johnson, J. D. Joannopoulos, M. Soljačić. Observation of trapped light within the radiation continuum. Nature, 499, 188-191(2013).

    [25] H. Friedrich, D. Wintgen. Interfering resonances and bound states in the continuum. Phys. Rev. A, 32, 3231-3242(1985).

    [26] E. D. Palik. Handbook of Optical Constants of Solids(1985).

    [27] F. Deng, H. Huang, J. D. Chen, S. Liu, H. Pang, X. He, S. Lan. Greatly enhanced plasmon-exciton coupling in Si/WS2/Au nanocavities. Nano Lett., 22, 220-228(2022).

    [28] H. Li, Y. Xu, J. Xiang, X. F. Li, C. Y. Zhang, S. L. Tied, S. Lan. Exploiting the interaction between a semiconductor nanosphere and a thin metal film for nanoscale plasmonic devices. Nanoscale, 8, 18963-18971(2016).

    [29] H. Liu, J. Gao, H. Zhang, Y. Zhang. Realization of tunable dual-type quasi-bound states in the continuum based on a Dirac semimetal metasurface. Opt. Mater. Express, 12, 2474-2485(2022).

    [30] S. A. Dyakov, M. V. Stepikhova, A. A. Bogdanov, A. V. Novikov, D. V. Yurasov, Z. F. Krasilnik, S. G. Tikhodeev, N. A. Gippius. Photonic bound states in the continuum in Si structures with the self-assembled Ge nanoislands(2020).

    Xuan Xiao, Yanxin Lu, Jiayi Jiang, Yihang Chen. Manipulation of optical bound states in the continuum in a metal-dielectric hybrid nanostructure[J]. Photonics Research, 2022, 10(11): 2526
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