Phase Modulation Using Dual Split Ring Resonators
Optics Express, Vol. 17, Issue 7, pp. 5089-5097 (2009)
http://dx.doi.org/10.1364/OE.17.005089
Acrobat PDF (771 KB)
Abstract
In this paper, we studied phase modulation numerically using metamaterials such as stacked structures of dual split ring resonators (DSRRs). To demonstrate the modulation, a vertical and a planar design were considered, where the wave vectors were parallel and perpendicular to the proposed structures creating 70 degrees and 80 degrees of phase change, respectively. In both of the designs modulation was brought about by changing the effective index of the structure through switching between the open and short states of the DSRRs while maintaining high transmission. One of the attractive features of our design was the thin layers of DSRRs, where for the vertical and planar models the DSRRs layers were 5 mm and 2.28 mm respectively. The numerical results obtained by simulation matched well with the theoretical prediction.
© 2009 Optical Society of America
1. Introduction
V. G. Veselago, The electrodynamics of substances with simultaneously negative values of permittivity and permeability, Sov. Phys USPEKHI 10, 509 (1968). [CrossRef]
R. A. Shelby, D. R. Smith, and S. Schultz, “Experimental verification of negative index of refraction, Science 292, 77–79, (2001). [CrossRef] [PubMed]
J. B. Pendry, D. Schurig, and D. R. Smith, “Controlling Electromagnetic Fields,” Science 312, 1780–1782, (2006). [CrossRef] [PubMed]
Z. Lu, J. A. Murakowski, C. A. Schuetz, S. Shi, G. J. Schneider, and D. W. Prather, “Three-dimensional subwavelength imaging by a photonic-crystal flat lens using negative refraction at microwave frequencies,” Phys. Rev. Lett . 95, 153901(4) (2005). [CrossRef] [PubMed]
M. K. Karkkainen and P. Ikonen, “Patch antenna with stacked split-ring resonators as artificial magneto-dielectric substrate,” Microwave Opt. Technol.Lett. 46, 554–556, (2005). [CrossRef]
S. Oh and L. Shafai, “Artificial magnetic conductor using split ring resonators and its applications to antennas,” Microwave Opt. Technol.Lett . 48, 329–334, (2006). [CrossRef]
Z. Sheng and V. Varadan, “Tuning the effective properties of metamaterials by changing the susbstrate,” J. Appl. Phys . 101, 014909-1, (2007). [CrossRef]
K. Aydin, I. Bulu, K. Guven, M. Kafesaki, C. M. Soukoulis, and E. Ozbay, “Investigation of magnetic resonances for different split-ring resonator parameters and designs,” New J. Phys . 7, 168 (2005). [CrossRef]
K. Aydin, K. Guven, N. Katsarakis, C. M. Soukoulis, and E. Ozbay, “Effect of disorder on magnetic resonance band gap of split-ring resonator structures,” Opt. Express 12, 5896 (2004) [CrossRef] [PubMed]
A. A. Zharov, I. V. Shadrivov, and Y. S. Kivshar, “Nonlinear properties of left handed materials,” Phys. Rev. Lett . 91, 037401 (2003) [CrossRef] [PubMed]
O. Reynet and O. Acher, “Voltage controlled metamaterial,” Appl. Phys. Lett . 84, 1198, (2004). [CrossRef]
H. T. Chen, W. J. Padilla, J. Zide, A. Gossard, A. Taylor, and R. Averitt, “Active terahertz metamaterial devices.” Nature 444, 597–600, (2006). [CrossRef] [PubMed]
H-T. Chen, J. Ohara, A. Azad, A. Taylor, R. Averitt, D. Shrekenhamer, and W. J. Padilla, “Experimental demonstration of frequency-agile terahertz metamaterials,” Nature Photonics 2, 295–298, (2008). [CrossRef]
P. He, P. Parimi, and C. Vittoria, “Tunable negative refractive index metamaterial phase shifter,” Electon. Lett . 43, (2007). [CrossRef]
V. J. Logeeswaran, A. Stameroff, M. Islam, W. Wu, A. Bratkovsky, P. Kuekes, S. Wang, and R. Williams, “Switching between positive and negative permeability by photoconductive coupling for modulation of electromagnetic radiation,” Appl. Phys. A 87, 209–216, (2007). [CrossRef]
A. Velez and J. Bonache, “Varactor-loaded complementary split ring resonators (VLCSRR) and their application to tunable metamaterial transmission lines,” IEEE Microwave and Wirel. Compon. Lett . 18, 28–30, (2008). [CrossRef]
S. Maslovski, P. Ikonen, I. kolmakov, and S. Tretyakov, “Artificial magnetic materials based on the new magnetic particle: metalsolenoid” Prog. Electromag. Res . 54, 61–81, (2005). [CrossRef]
M. Kafesaki, T. Koschny, R. Penciu, T. Gundogdu, E. Econonou, and C. Soukoulis, “Left-handed Metamaterials: detailed numerical studies of the transmission properties, J. Opt. A: Pure and Appl. Opt . 7, S21–S22, (2005). [CrossRef]
D. Dudley, W. Duncan, and J. Slaughter, “Emerging digital micromirror device (DMD) applications,” Proc. SPIE 4985, 14–25 (2003). [CrossRef]
D. K. Ghodgaonkar, V. V. Varadan, and V. K. Varadan, “Free-space measurement of complex permittivity and complex permeability of magnetic materials at microwave frequencies,” IEEE Trans. Instrum. Meas . 39, 387–394, (1990). [CrossRef]
2. Design and modeling
Z. Sheng and V. Varadan, “Tuning the effective properties of metamaterials by changing the susbstrate,” J. Appl. Phys . 101, 014909-1, (2007). [CrossRef]
S. Maslovski, P. Ikonen, I. kolmakov, and S. Tretyakov, “Artificial magnetic materials based on the new magnetic particle: metalsolenoid” Prog. Electromag. Res . 54, 61–81, (2005). [CrossRef]
Z. Sheng and V. Varadan, “Tuning the effective properties of metamaterials by changing the susbstrate,” J. Appl. Phys . 101, 014909-1, (2007). [CrossRef]
D. K. Ghodgaonkar, V. V. Varadan, and V. K. Varadan, “Free-space measurement of complex permittivity and complex permeability of magnetic materials at microwave frequencies,” IEEE Trans. Instrum. Meas . 39, 387–394, (1990). [CrossRef]
D. K. Ghodgaonkar, V. V. Varadan, and V. K. Varadan, “Free-space measurement of complex permittivity and complex permeability of magnetic materials at microwave frequencies,” IEEE Trans. Instrum. Meas . 39, 387–394, (1990). [CrossRef]
Z. Sheng and V. Varadan, “Tuning the effective properties of metamaterials by changing the susbstrate,” J. Appl. Phys . 101, 014909-1, (2007). [CrossRef]
N. Katsarakis, T. Koschny, and M. Kafesaki, “Electric coupling to the magnetic resonance of split ring resonators,” Appl. Phys. Lett . 84, 2943–2945, (2004). [CrossRef]
M. Kafesaki, T. Koschny, R. Penciu, T. Gundogdu, E. Econonou, and C. Soukoulis, “Left-handed Metamaterials: detailed numerical studies of the transmission properties, J. Opt. A: Pure and Appl. Opt . 7, S21–S22, (2005). [CrossRef]
3. Discussion
K. Aydin, I. Bulu, K. Guven, M. Kafesaki, C. M. Soukoulis, and E. Ozbay, “Investigation of magnetic resonances for different split-ring resonator parameters and designs,” New J. Phys . 7, 168 (2005). [CrossRef]
K. Aydin and E. Ozbay, “Capacitor-loaded split ring resonators as tunable metamaterial components,” J. Appl. Phys . 101, 024911-5, (2007). [CrossRef]
N. Liu, H. Guo, L. Fu, S. Kaiser, H. Schweizer, and H. Giessen, “Three-dimensional photonic mtamaterials at optical frequencies,” Nature Materials 7, 31–37, (2008). [CrossRef]
4. Conclusion
References and links
V. G. Veselago, The electrodynamics of substances with simultaneously negative values of permittivity and permeability, Sov. Phys USPEKHI 10, 509 (1968). [CrossRef] | |
R. A. Shelby, D. R. Smith, and S. Schultz, “Experimental verification of negative index of refraction, Science 292, 77–79, (2001). [CrossRef] [PubMed] | |
Z. Lu, J. A. Murakowski, C. A. Schuetz, S. Shi, G. J. Schneider, and D. W. Prather, “Three-dimensional subwavelength imaging by a photonic-crystal flat lens using negative refraction at microwave frequencies,” Phys. Rev. Lett . 95, 153901(4) (2005). [CrossRef] [PubMed] | |
Z. Sheng and V. Varadan, “Tuning the effective properties of metamaterials by changing the susbstrate,” J. Appl. Phys . 101, 014909-1, (2007). [CrossRef] | |
D. K. Ghodgaonkar, V. V. Varadan, and V. K. Varadan, “Free-space measurement of complex permittivity and complex permeability of magnetic materials at microwave frequencies,” IEEE Trans. Instrum. Meas . 39, 387–394, (1990). [CrossRef] | |
K. Aydin, I. Bulu, K. Guven, M. Kafesaki, C. M. Soukoulis, and E. Ozbay, “Investigation of magnetic resonances for different split-ring resonator parameters and designs,” New J. Phys . 7, 168 (2005). [CrossRef] | |
K. Aydin, K. Guven, N. Katsarakis, C. M. Soukoulis, and E. Ozbay, “Effect of disorder on magnetic resonance band gap of split-ring resonator structures,” Opt. Express 12, 5896 (2004) [CrossRef] [PubMed] | |
A. A. Zharov, I. V. Shadrivov, and Y. S. Kivshar, “Nonlinear properties of left handed materials,” Phys. Rev. Lett . 91, 037401 (2003) [CrossRef] [PubMed] | |
H. T. Chen, W. J. Padilla, J. Zide, A. Gossard, A. Taylor, and R. Averitt, “Active terahertz metamaterial devices.” Nature 444, 597–600, (2006). [CrossRef] [PubMed] | |
V. J. Logeeswaran, A. Stameroff, M. Islam, W. Wu, A. Bratkovsky, P. Kuekes, S. Wang, and R. Williams, “Switching between positive and negative permeability by photoconductive coupling for modulation of electromagnetic radiation,” Appl. Phys. A 87, 209–216, (2007). [CrossRef] | |
O. Reynet and O. Acher, “Voltage controlled metamaterial,” Appl. Phys. Lett . 84, 1198, (2004). [CrossRef] | |
P. He, P. Parimi, and C. Vittoria, “Tunable negative refractive index metamaterial phase shifter,” Electon. Lett . 43, (2007). [CrossRef] | |
A. Velez and J. Bonache, “Varactor-loaded complementary split ring resonators (VLCSRR) and their application to tunable metamaterial transmission lines,” IEEE Microwave and Wirel. Compon. Lett . 18, 28–30, (2008). [CrossRef] | |
D. Smith, S. Schultz, P. Markos, and C. M. Soukoulis “Determination of effective permittivity and permeability of metamaterials from reflection and transmission coefficients,” Phys. Rev. B 65, 195104-1, (2002). [CrossRef] | |
H-T. Chen, J. Ohara, A. Azad, A. Taylor, R. Averitt, D. Shrekenhamer, and W. J. Padilla, “Experimental demonstration of frequency-agile terahertz metamaterials,” Nature Photonics 2, 295–298, (2008). [CrossRef] | |
M. K. Karkkainen and P. Ikonen, “Patch antenna with stacked split-ring resonators as artificial magneto-dielectric substrate,” Microwave Opt. Technol.Lett. 46, 554–556, (2005). [CrossRef] | |
S. Oh and L. Shafai, “Artificial magnetic conductor using split ring resonators and its applications to antennas,” Microwave Opt. Technol.Lett . 48, 329–334, (2006). [CrossRef] | |
S. Maslovski, P. Ikonen, I. kolmakov, and S. Tretyakov, “Artificial magnetic materials based on the new magnetic particle: metalsolenoid” Prog. Electromag. Res . 54, 61–81, (2005). [CrossRef] | |
N. Katsarakis, T. Koschny, and M. Kafesaki, “Electric coupling to the magnetic resonance of split ring resonators,” Appl. Phys. Lett . 84, 2943–2945, (2004). [CrossRef] | |
J. B. Pendry, D. Schurig, and D. R. Smith, “Controlling Electromagnetic Fields,” Science 312, 1780–1782, (2006). [CrossRef] [PubMed] | |
M. Kafesaki, T. Koschny, R. Penciu, T. Gundogdu, E. Econonou, and C. Soukoulis, “Left-handed Metamaterials: detailed numerical studies of the transmission properties, J. Opt. A: Pure and Appl. Opt . 7, S21–S22, (2005). [CrossRef] | |
D. Dudley, W. Duncan, and J. Slaughter, “Emerging digital micromirror device (DMD) applications,” Proc. SPIE 4985, 14–25 (2003). [CrossRef] | |
K. Aydin and E. Ozbay, “Capacitor-loaded split ring resonators as tunable metamaterial components,” J. Appl. Phys . 101, 024911-5, (2007). [CrossRef] | |
N. Liu, H. Guo, L. Fu, S. Kaiser, H. Schweizer, and H. Giessen, “Three-dimensional photonic mtamaterials at optical frequencies,” Nature Materials 7, 31–37, (2008). [CrossRef] | |
C. Balanis, Antenna Theory, third edition (John Wiley & Sons, 2005), Chap. 6. | |
T. Hand and S. Cummer, “Controllable magnetic metamaterial using digitally addressable split-ring resonator,” IEEE Ant. Propag. Lett . (to be published). |
OCIS Codes
(060.5060) Fiber optics and optical communications : Phase modulation
(160.3918) Materials : Metamaterials
(070.5753) Fourier optics and signal processing : Resonators
ToC Category:
Metamaterials
History
Original Manuscript: January 30, 2009
Revised Manuscript: March 4, 2009
Manuscript Accepted: March 13, 2009
Published: March 16, 2009
Citation
Iftekhar Mirza, Shouyuan Shi, and Dennis Prather, "Phase Modulation Using Dual Split Ring Resonators," Opt. Express 17, 5089-5097 (2009)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-17-7-5089
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References
- Q1. V. G. Veselago, The electrodynamics of substances with simultaneously negative values of permittivity and permeability, Sov. Phys USPEKHI 10, 509 (1968). [CrossRef]
- R. A. Shelby, D.R. Smith, and S. Schultz, "Experimental verification of negative index of refraction, Science 292, 77-79, (2001). [CrossRef] [PubMed]
- Z. Lu, J. A. Murakowski, C. A. Schuetz, S. Shi, G. J. Schneider, and D. W. Prather, "Three-dimensional subwavelength imaging by a photonic-crystal flat lens using negative refraction at microwave frequencies," Phys. Rev. Lett. 95, 153901(4) (2005). [CrossRef] [PubMed]
- Q2. Z. Sheng and V. Varadan, "Tuning the effective properties of metamaterials by changing the susbstrate," J. Appl. Phys. 101, 014909-1, (2007). [CrossRef]
- D. K. Ghodgaonkar, V.V. Varadan, and V. K. Varadan, "Free-space measurement of complex permittivity and complex permeability of magnetic materials at microwave frequencies," IEEE Trans. Instrum. Meas. 39, 387-394, (1990). [CrossRef]
- K. Aydin, I. Bulu, K. Guven, M. Kafesaki, C. M. Soukoulis and E. Ozbay, "Investigation of magnetic resonances for different split-ring resonator parameters and designs," New J. Phys. 7, 168 (2005). [CrossRef]
- K. Aydin, K. Guven, N. Katsarakis, C. M. Soukoulis and E. Ozbay, "Effect of disorder on magnetic resonance band gap of split-ring resonator structures," Opt. Express 12, 5896 (2004) [CrossRef] [PubMed]
- A. A. Zharov, I. V. Shadrivov, and Y.S. Kivshar, "Nonlinear properties of left handed materials," Phys. Rev. Lett. 91, 037401 (2003) [CrossRef] [PubMed]
- H. T. Chen, W. J. Padilla, J. Zide, A. Gossard, A. Taylor and R. Averitt, "Active terahertz metamaterial devices." Nature 444, 597-600, (2006). [CrossRef] [PubMed]
- Q3. V. J. Logeeswaran, A. Stameroff, M. Islam, W. Wu, A. Bratkovsky, P. Kuekes, S. Wang and R. Williams, "Switching between positive and negative permeability by photoconductive coupling for modulation of electromagnetic radiation," Appl. Phys. A 87, 209-216, (2007). [CrossRef]
- O. Reynet and O. Acher, "Voltage controlled metamaterial," Appl. Phys. Lett. 84, 1198, (2004). [CrossRef]
- P. He, P. Parimi, C. Vittoria, "Tunable negative refractive index metamaterial phase shifter," Electon. Lett. 43, (2007). [CrossRef]
- Q4. A. Velez, J. Bonache, "Varactor-loaded complementary split ring resonators (VLCSRR) and their application to tunable metamaterial transmission lines," IEEE Microwave and Wirel. Compon. Lett. 18, 28-30, (2008). [CrossRef]
- Q5. D. Smith, S. Schultz, P. Markos and C. M. Soukoulis "Determination of effective permittivity and permeability of metamaterials from reflection and transmission coefficients," Phys. Rev. B 65, 195104-1, (2002). [CrossRef]
- Q6. H-T. Chen, J. Ohara, A. Azad, A. Taylor, R. Averitt, D. Shrekenhamer and W. J. Padilla, "Experimental demonstration of frequency-agile terahertz metamaterials," Nature Photonics 2,295-298, (2008). [CrossRef]
- M. K. Karkkainen and P. Ikonen, "Patch antenna with stacked split-ring resonators as artificial magneto-dielectric substrate," Microwave Opt. Technol.Lett. 46, 554-556, (2005). [CrossRef]
- S. Oh, L. Shafai, "Artificial magnetic conductor using split ring resonators and its applications to antennas," Microwave Opt. Technol.Lett. 48, 329-334, (2006). [CrossRef]
- Q7. S. Maslovski, P. Ikonen, I. kolmakov and S. Tretyakov, "Artificial magnetic materials based on the new magnetic particle: metalsolenoid" Prog. Electromag. Res. 54, 61-81, (2005). [CrossRef]
- N. Katsarakis, T. Koschny and M. Kafesaki, "Electric coupling to the magnetic resonance of split ring resonators," Appl. Phys. Lett. 84, 2943-2945, (2004). [CrossRef]
- J. B. Pendry, D. Schurig, D. R. Smith, "Controlling Electromagnetic Fields," Science 312, 1780-1782, (2006). [CrossRef] [PubMed]
- M. Kafesaki, T. Koschny, R. Penciu, T. Gundogdu, E. Econonou and C. Soukoulis, "Left-handed Metamaterials: detailed numerical studies of the transmission properties, J. Opt. A: Pure and Appl. Opt. 7, S21-S22, (2005). [CrossRef]
- D. Dudley, W. Duncan, J. Slaughter, "Emerging digital micromirror device (DMD) applications," Proc. SPIE 4985,14-25 (2003). [CrossRef]
- K. Aydin, E. Ozbay, "Capacitor-loaded split ring resonators as tunable metamaterial components," J. Appl. Phys. 101, 024911-5, (2007). [CrossRef]
- N. Liu, H. Guo, L. Fu, S. Kaiser, H. Schweizer and H. Giessen, " Three-dimensional photonic mtamaterials at optical frequencies," Nature Materials 7, 31-37, (2008). [CrossRef]
- C. Balanis, Antenna Theory, third edition (John Wiley & Sons, 2005), Chap. 6.
- Q8. T. Hand, S. Cummer, "Controllable magnetic metamaterial using digitally addressable split-ring resonator," IEEE Ant. Propag. Lett. (to be published).
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