• Photonics Research
  • Vol. 7, Issue 4, 457 (2019)
Ke Bi1, Daquan Yang1, Jia Chen1, Qingmin Wang1, Hongya Wu2, Chuwen Lan1、*, and Yuping Yang3
Author Affiliations
  • 1State Key Laboratory of Information Photonics and Optical Communications, School of Science, Beijing University of Posts and Telecommunications, Beijing 100876, China
  • 2School of Materials Science and Engineering, Shijiazhuang Tiedao University, Shijiazhuang 050043, China
  • 3School of Science, Minzu University of China, Beijing 100081, China
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    DOI: 10.1364/PRJ.7.000457 Cite this Article Set citation alerts
    Ke Bi, Daquan Yang, Jia Chen, Qingmin Wang, Hongya Wu, Chuwen Lan, Yuping Yang. Experimental demonstration of ultra-large-scale terahertz all-dielectric metamaterials[J]. Photonics Research, 2019, 7(4): 457 Copy Citation Text show less
    Illustrations of the (a) NTSA [39] and (b) MTAS methods.
    Fig. 1. Illustrations of the (a) NTSA [39] and (b) MTAS methods.
    Microscope images of the fabricated (a) ZrO2 and (b) Al2O3 all-dielectric metamaterials. Photographs of (c) the fabrication process and (d) the fabricated ultra-large-scale flexible all-dielectric metamaterial using the MTAS method. (e) Simulated and measured transmissions for ZrO2 and Al2O3 all-dielectric metamaterials. The insets are simulated magnetic field intensity distributions at the corresponding resonance dips in the H–k plane.
    Fig. 2. Microscope images of the fabricated (a) ZrO2 and (b) Al2O3 all-dielectric metamaterials. Photographs of (c) the fabrication process and (d) the fabricated ultra-large-scale flexible all-dielectric metamaterial using the MTAS method. (e) Simulated and measured transmissions for ZrO2 and Al2O3 all-dielectric metamaterials. The insets are simulated magnetic field intensity distributions at the corresponding resonance dips in the Hk plane.
    Illustrations of preparation for a touching (a) dimer, (b) trimer, (c) quadrumer, and (d) chain. The upper insets are templates and those below are the resultant metamaterials. (e)–(h) Corresponding fabricated samples.
    Fig. 3. Illustrations of preparation for a touching (a) dimer, (b) trimer, (c) quadrumer, and (d) chain. The upper insets are templates and those below are the resultant metamaterials. (e)–(h) Corresponding fabricated samples.
    Simulated transmissions of dimer all-dielectric metamaterial with different spacings. The insets are the simulated electric field intensities.
    Fig. 4. Simulated transmissions of dimer all-dielectric metamaterial with different spacings. The insets are the simulated electric field intensities.
    Schematic illustrations of (a) a metallic reflector and (b) an all-dielectric metamaterial reflector. (c) Simulated reflection of the all-dielectric metamaterial with different lattice constants. Calculated effective permittivity and permeability with different lattice constants: (d) P=160 μm, (e) P=120 μm, and (f) P=90 μm. The regions where the effective permittivity and permeability have opposite signs are marked in blue.
    Fig. 5. Schematic illustrations of (a) a metallic reflector and (b) an all-dielectric metamaterial reflector. (c) Simulated reflection of the all-dielectric metamaterial with different lattice constants. Calculated effective permittivity and permeability with different lattice constants: (d) P=160  μm, (e) P=120  μm, and (f) P=90  μm. The regions where the effective permittivity and permeability have opposite signs are marked in blue.
    (a) Fabrication process of the broadband terahertz all-dielectric metamaterial reflector based on shrinkable film. Microscope images of the all-dielectric metamaterial (b) before and (c) after HT. (d) Measured reflections of the fabricated terahertz all-dielectric metamaterial before and after HT.
    Fig. 6. (a) Fabrication process of the broadband terahertz all-dielectric metamaterial reflector based on shrinkable film. Microscope images of the all-dielectric metamaterial (b) before and (c) after HT. (d) Measured reflections of the fabricated terahertz all-dielectric metamaterial before and after HT.
    Ke Bi, Daquan Yang, Jia Chen, Qingmin Wang, Hongya Wu, Chuwen Lan, Yuping Yang. Experimental demonstration of ultra-large-scale terahertz all-dielectric metamaterials[J]. Photonics Research, 2019, 7(4): 457
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