• Photonics Research
  • Vol. 6, Issue 12, 1102 (2018)
Yunsheng Guo1、*, Saiyu Liu1, Ke Bi2, Ming Lei2, and Ji Zhou3
Author Affiliations
  • 1Department of Applied Physics, Inner Mongolia University of Science & Technology, Baotou 014010, China
  • 2State Key Laboratory of Information Photonics and Optical Communications & School of Science, Beijing University of Posts and Telecommunications, Beijing 100876, China
  • 3State Key Laboratory of New Ceramics and Fine Processing, School of Materials Science and Engineering, Tsinghua University, Beijing 100084, China
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    DOI: 10.1364/PRJ.6.001102 Cite this Article Set citation alerts
    Yunsheng Guo, Saiyu Liu, Ke Bi, Ming Lei, Ji Zhou. Low-power nonlinear enhanced electromagnetic transmission of a subwavelength metallic aperture[J]. Photonics Research, 2018, 6(12): 1102 Copy Citation Text show less
    Schematic representation of a nonlinear enhanced electromagnetic transmission using a subwavelength metallic aperture with addition of a dielectric meta-atom. (a) Front view (y–z plane) of a subwavelength aperture at the center of a copper plate. (b) Front and (c) sectional views (x–z plane) of the subwavelength aperture with the inserted dielectric meta-atom. Electric field intensity distributions (x–y plane) at the (d) nonresonant frequency (11.5 GHz) and (e) resonant frequency (11.73 GHz) of the meta-atom when the metallic aperture with the added meta-atom is placed within the waveguide and the electromagnetic waves are excited from one of the waveguide ports.
    Fig. 1. Schematic representation of a nonlinear enhanced electromagnetic transmission using a subwavelength metallic aperture with addition of a dielectric meta-atom. (a) Front view (yz plane) of a subwavelength aperture at the center of a copper plate. (b) Front and (c) sectional views (xz plane) of the subwavelength aperture with the inserted dielectric meta-atom. Electric field intensity distributions (xy plane) at the (d) nonresonant frequency (11.5 GHz) and (e) resonant frequency (11.73 GHz) of the meta-atom when the metallic aperture with the added meta-atom is placed within the waveguide and the electromagnetic waves are excited from one of the waveguide ports.
    Principles of the nonlinear enhanced electromagnetic transmission properties of a subwavelength metallic aperture with an added dielectric meta-atom. Transmission coefficients T1, T2, and T3 at incident powers of P1, P2, and P3, respectively.
    Fig. 2. Principles of the nonlinear enhanced electromagnetic transmission properties of a subwavelength metallic aperture with an added dielectric meta-atom. Transmission coefficients T1, T2, and T3 at incident powers of P1, P2, and P3, respectively.
    (a) Measured and (b) simulated transmission spectra of the single subwavelength metallic aperture and the same aperture with an inserted ceramic meta-atom at incident electromagnetic powers ranging from 0 to 20 dBm.
    Fig. 3. (a) Measured and (b) simulated transmission spectra of the single subwavelength metallic aperture and the same aperture with an inserted ceramic meta-atom at incident electromagnetic powers ranging from 0 to 20 dBm.
    Transmission spectra of the subwavelength aperture with the added ceramic meta-atom over the incident power range from 0 to 20 dBm. Enhanced nonlinear transmission is shown at (a) 11.71 GHz, (b) 11.74 GHz, and (c) 11.76 GHz, while linear transmission is shown at (d) 12 GHz. Black lines represent the measured results; red lines represent the simulated results.
    Fig. 4. Transmission spectra of the subwavelength aperture with the added ceramic meta-atom over the incident power range from 0 to 20 dBm. Enhanced nonlinear transmission is shown at (a) 11.71 GHz, (b) 11.74 GHz, and (c) 11.76 GHz, while linear transmission is shown at (d) 12 GHz. Black lines represent the measured results; red lines represent the simulated results.
    Yunsheng Guo, Saiyu Liu, Ke Bi, Ming Lei, Ji Zhou. Low-power nonlinear enhanced electromagnetic transmission of a subwavelength metallic aperture[J]. Photonics Research, 2018, 6(12): 1102
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