• Photonics Research
  • Vol. 4, Issue 3, 0A16 (2016)
Xiaoguang Zhao1, Jingdi Zhang2, Kebin Fan1, Guangwu Duan1, Grace D. Metcalfe3, Michael Wraback3, Xin Zhang1、*, and Richard D. Averitt2、4
Author Affiliations
  • 1Department of Mechanical Engineering, Boston University, 110 Cummington Mall, Boston, Massachusetts 02215, USA
  • 2Department of Physics, University of California, San Diego, 9500 Gilman Dr., La Jolla, California 92093, USA
  • 3Army Research Laboratory, 2800 Powder Mill Road, Adelphi, Maryland 20783, USA
  • 4e-mail: raveritt@ucsd.edu
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    DOI: 10.1364/prj.4.000a16 Cite this Article Set citation alerts
    Xiaoguang Zhao, Jingdi Zhang, Kebin Fan, Guangwu Duan, Grace D. Metcalfe, Michael Wraback, Xin Zhang, Richard D. Averitt. Nonlinear terahertz metamaterial perfect absorbers using GaAs [Invited][J]. Photonics Research, 2016, 4(3): 0A16 Copy Citation Text show less
    (a) Schematic of the MPA on the GaAs substrate; (b) simulated transmission (T), reflection (R), and absorption (A) spectra; (c) microscope image of the ESRR array of the MPA (inset: close-up view of a unit cell); (d) simulated time domain field strength of the incident THz pulse (10×) and the electric field in the middle of the capacitive gap [inset: the 2D map of the electric field enhancement factor (fE)].
    Fig. 1. (a) Schematic of the MPA on the GaAs substrate; (b) simulated transmission (T), reflection (R), and absorption (A) spectra; (c) microscope image of the ESRR array of the MPA (inset: close-up view of a unit cell); (d) simulated time domain field strength of the incident THz pulse (10×) and the electric field in the middle of the capacitive gap [inset: the 2D map of the electric field enhancement factor (fE)].
    Simulated time-domain response of (a) the MPA and (b) the reference demonstrates the multi-reflection effect of the GaAs substrate. The second pulse (gray shaded area) is the internal absorption response that is considered in our analysis.
    Fig. 2. Simulated time-domain response of (a) the MPA and (b) the reference demonstrates the multi-reflection effect of the GaAs substrate. The second pulse (gray shaded area) is the internal absorption response that is considered in our analysis.
    (a) Measured reflection spectra of the nonlinear MPA under different THz field strengths, (b) calculated nonlinear absorbance spectra, (c) the resonance frequency versus the incident THz peak field, (d) the absorbance at 0.68 THz versus the incident THz peak field.
    Fig. 3. (a) Measured reflection spectra of the nonlinear MPA under different THz field strengths, (b) calculated nonlinear absorbance spectra, (c) the resonance frequency versus the incident THz peak field, (d) the absorbance at 0.68 THz versus the incident THz peak field.
    (a) Simulated spatial distribution of the field enhancement across the gap at depths of 0.1 and 0.5 μm (inset: the cross section of the MPA), (b) simulated reflection spectra with different carrier densities and mobilities.
    Fig. 4. (a) Simulated spatial distribution of the field enhancement across the gap at depths of 0.1 and 0.5 μm (inset: the cross section of the MPA), (b) simulated reflection spectra with different carrier densities and mobilities.
    (a) Illustration of the flexible MPA, (b) the fabricated MPA wrapped on a plastic vein [top inset: pristine unit cell; bottom inset: the unit cell damaged by the high field (the white circle highlights the damaged area)], (c) the field enhancement spectra of the flexible and solid MPAs, (d) measured absorbance at different field strengths.
    Fig. 5. (a) Illustration of the flexible MPA, (b) the fabricated MPA wrapped on a plastic vein [top inset: pristine unit cell; bottom inset: the unit cell damaged by the high field (the white circle highlights the damaged area)], (c) the field enhancement spectra of the flexible and solid MPAs, (d) measured absorbance at different field strengths.
    Xiaoguang Zhao, Jingdi Zhang, Kebin Fan, Guangwu Duan, Grace D. Metcalfe, Michael Wraback, Xin Zhang, Richard D. Averitt. Nonlinear terahertz metamaterial perfect absorbers using GaAs [Invited][J]. Photonics Research, 2016, 4(3): 0A16
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