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Wide-angle scannable reflector design using conformal transformation optics |
Optics Express, Vol. 21, Issue 2, pp. 2133-2146 (2013)
http://dx.doi.org/10.1364/OE.21.002133
Acrobat PDF (1470 KB)
Abstract
A flat reflector capable of scanning over wide angles is designed using a transformation optics approach. This reflector is derived from its virtual parabolic counterpart using a conformal coordinate transformation that determines the permittivity profile of the flat reflector. By changing the permittivity profile, the flat reflector is then capable of scanning up to 47° away from broadside while maintaining good beam characteristics across a wide frequency range. Moreover, its directivity is comparable to that of the virtual parabolic reflector, even at high scan angles. We use the Schwarz-Christoffel transformation as a versatile tool to produce perfect conformal mapping of coordinates between the virtual and flat reflectors, thereby avoiding the need to monitor the anisotropy of the material that results when employing quasi-conformal methods.
© 2013 OSA
1. Introduction
T. Tyc and U. Leonhardt, “Broadband invisibility by non-euclidean cloaking,” Science 323, 110–112 (2009). [CrossRef]
J. Li and J. B. Pendry, “Hiding under the carpet: A new strategy for cloaking,” Phys. Rev. Lett. 101, 203901 (2008). [CrossRef] [PubMed]
D. Schurig, “An aberration-free lens with zero f-number,” New J. of Phys. 10, 115034 (2008). [CrossRef]
D. A. Roberts, N. Kundtz, and D. R. Smith, “Optical lens compression via transformation optics,” Opt. Express 17, 16535–16542 (2009). [CrossRef] [PubMed]
D. H. Kwon and D. H. Werner, “Transformation optical designs for wave collimators, flat lenses and right-angle bends,” New J. of Phys. 10, 115023 (2008). [CrossRef]
N. Engheta, “Antenna-guided light,” Science 21, 317–318 (2011). [CrossRef]
M. Rahm, D. A. Roberts, J. B. Pendry, and D. R. Smith, “Transformation-optical design of adaptive beam bends and beam expanders,” Opt. Express 16, 11555–11567 (2008). [CrossRef] [PubMed]
F. Kong, B.-I. Wu, J. A. Kong, J. Huangfu, S. Xi, and H. Chen, “Planar focusing antenna design by using coordinate transformation technology,” Appl. Phys. Lett. 91, 253509 –253509–3 (2007). [CrossRef]
F. Kong, B.-I. Wu, J. A. Kong, J. Huangfu, S. Xi, and H. Chen, “Planar focusing antenna design by using coordinate transformation technology,” Appl. Phys. Lett. 91, 253509 –253509–3 (2007). [CrossRef]
P. H. Tichit, S. N. Burokur, and A. de Lustrac, “Ultradirective antenna via transformation optics,” J. Appl. Phys. 105, 104912 –104912–6 (2009). [CrossRef]
H. Chen, B.-I. Wu, L. Ran, T. M. Grzegorczyk, and J. A. Kong, “Controllable left-handed metamaterial and its application to a steerable antenna,” Appl. Phys. Lett. 89, 053509 (2006). [CrossRef]
Z. L. Mei and T. J. Cui, “Experimental realization of a broadband bend structure using gradient index metamaterials,” Opt. Express 17, 18354–18363 (2009). [CrossRef] [PubMed]
D. Schurig, J. J. Mock, B. J. Justice, S. A. Cummer, J. B. Pendry, A. F. Starr, and D. R. Smith, “Metamaterial electromagnetic cloak at microwave frequencies,” Science 314, 977–980 (2006). [CrossRef] [PubMed]
J. Li and J. B. Pendry, “Hiding under the carpet: A new strategy for cloaking,” Phys. Rev. Lett. 101, 203901 (2008). [CrossRef] [PubMed]
M. Riel and J. J. Laurin, “Design of an electronically beam scanning reflectarray using aperture-coupled elements,” IEEE Trans. Antennas Propag. 55, 1260 –1266 (2007). [CrossRef]
A. Gaebler, A. Moessinger, F. Goelden, A. Manabe, M. Goebel, R. Follmann, D. Koether, C. Modes, A. Kipka, M. Deckelmann, T. Rabe, B. Schulz, P. Kuchenbecker, A. Lapanik, S. Mueller, W. Haase, and R. Jakoby, “Liquid crystal-reconfigurable antenna concepts for space applications at microwave and millimeter waves,” Int. J. of Antennas Propag. (2009). [CrossRef]
L. Cabria, J. A. Garcia, J. Gutierrez-Rios, A. Tazon, and J. Vassal’lo, “Active reflectors: Possible solutions based on reflectarrays and Fresnel reflectors,” Int. J. Antennas Propag. (2009). [CrossRef]
Y. Ji and M. Fujita, “Design and analysis of a folded Fresnel zone plate antenna,” Int. J. of Infrared and Millimeter Waves 15, 1385–1406 (1994). [CrossRef]
R. Yang, W. Tang, and Y. Hao, “Wideband beam-steerable flat reflectors via transformation optics,” IEEE Antennas Wireless Propag. Lett. 10, 1290 –1294 (2011). [CrossRef]
R. Yang, W. Tang, and Y. Hao, “Wideband beam-steerable flat reflectors via transformation optics,” IEEE Antennas Wireless Propag. Lett. 10, 1290 –1294 (2011). [CrossRef]
L. Tang, J. Yin, G. Yuan, J. Du, H. Gao, X. Dong, Y. Lu, and C. Du, “General conformal transformation method based on Schwarz-Christoffel approach,” Opt. Express 19, 15119–15126 (2011). [CrossRef] [PubMed]
R. Yang, W. Tang, and Y. Hao, “Wideband beam-steerable flat reflectors via transformation optics,” IEEE Antennas Wireless Propag. Lett. 10, 1290 –1294 (2011). [CrossRef]
2. Conformal coordinate transformation and Schwarz-Christoffel transformation
J. Li and J. B. Pendry, “Hiding under the carpet: A new strategy for cloaking,” Phys. Rev. Lett. 101, 203901 (2008). [CrossRef] [PubMed]
U. Leonhardt, “Optical conformal mapping,” Science 23, 1777–1780 (2006). [CrossRef]
W. Tang, C. Argyropoulos, E. Kallos, W. Song, and Y. Hao, “Discrete coordinate transformation for designing all-dielectric flat antennas,” IEEE Trans. Antennas Propag. 58, 3795 –3804 (2010). [CrossRef]
Y. G. Ma, N. Wang, and C. K. Ong, “Application of inverse, strict conformal transformation to design waveguide devices,” J. Opt. Soc. Am. A 27, 968–972 (2010). [CrossRef]
L. Tang, J. Yin, G. Yuan, J. Du, H. Gao, X. Dong, Y. Lu, and C. Du, “General conformal transformation method based on Schwarz-Christoffel approach,” Opt. Express 19, 15119–15126 (2011). [CrossRef] [PubMed]
3. Reflector design using Schwarz-Christoffel transformation
3.1. Embedding a parabolic reflector in coordinate transformation
J. Li and J. B. Pendry, “Hiding under the carpet: A new strategy for cloaking,” Phys. Rev. Lett. 101, 203901 (2008). [CrossRef] [PubMed]
N. Kundtz, D. R. Smith, and J. B. Pendry, “Electromagnetic design with transformation optics,” Proceedings of the IEEE 99, 1622 –1633 (2011). [CrossRef]
R. Yang, W. Tang, and Y. Hao, “Wideband beam-steerable flat reflectors via transformation optics,” IEEE Antennas Wireless Propag. Lett. 10, 1290 –1294 (2011). [CrossRef]
W. Tang, C. Argyropoulos, E. Kallos, W. Song, and Y. Hao, “Discrete coordinate transformation for designing all-dielectric flat antennas,” IEEE Trans. Antennas Propag. 58, 3795 –3804 (2010). [CrossRef]
4. Permittivity from coordinate transformation
4.1. Permittivity profile
- This SC transformation maps a rectangle to a closed polygon. Hence the distance between any two points in the physical space z1 and z2 has the same optical length as the two corresponding points w1 = fsc(z1) and w2 = fsc(z2) in the virtual space. This is the direct result of the coordinate transformation. However, it does not guarantee the optical lengths are the same for two points if one of the points is outside of the transformation region. This poses a problem as the reflected fields extend beyond the transformed coordinate region, which can lead to de-focussing effects.
- Along the boundary of the coordinate transformation in the physical space, there is a impedance mismatch which would produce reflections at the boundary as the permittivity on one side of the boundary is that of free space while on the opposite side it is determined by |dw/dz|2. The reflections produced at these boundaries are expected to degrade the far-field pattern of the reflector.
- There is a degree of freedom in scaling the overall permittivity profile. If the coordinates of the rectangular region in Fig. 4(b) are divided by a factor of s = 2 to halve the physical size of the flat reflector, then the corresponding permittivity, according to Eq.(1), needs to be multiplied by a factor of s2 = 4. Hence the permittivity profile can be scaled if needed, providing a degree of freedom in the design of the reflector cover.
- There may be regions in the relative permittivity profile that are less than unity.
W. Tang, C. Argyropoulos, E. Kallos, W. Song, and Y. Hao, “Discrete coordinate transformation for designing all-dielectric flat antennas,” IEEE Trans. Antennas Propag. 58, 3795 –3804 (2010). [CrossRef]
4.2. Reflector cover thickness and permittivity tapering
5. Results
5.1. Scanning performance
R. Yang, W. Tang, and Y. Hao, “Wideband beam-steerable flat reflectors via transformation optics,” IEEE Antennas Wireless Propag. Lett. 10, 1290 –1294 (2011). [CrossRef]
5.2. Effect of perturbing the relative permittivity profile
5.3. Directivity patterns versus frequency
6. Practical considerations
N. Kundtz and D. R. Smith, “Extreme-angle broadband metamaterial lens,” Nature Materials 9, 129 – 32 (2010). [CrossRef]
S. V. Hum, M. Okoniewski, and R. J. Davies, “Realizing an electronically tunable reflectarray using varactor diode-tuned elements,” IEEE Microw. Wireless Compon. Lett. (2005). [CrossRef]
7. Conclusion
References and links
T. Tyc and U. Leonhardt, “Broadband invisibility by non-euclidean cloaking,” Science 323, 110–112 (2009). [CrossRef] | |
R. Schmied, J. C. Halimeh, and M. Wegener, “Conformal carpet and grating cloaks,” Opt. Express 18, 24361–24367 (2010). [CrossRef] [PubMed] | |
J. Li and J. B. Pendry, “Hiding under the carpet: A new strategy for cloaking,” Phys. Rev. Lett. 101, 203901 (2008). [CrossRef] [PubMed] | |
D. Schurig, “An aberration-free lens with zero f-number,” New J. of Phys. 10, 115034 (2008). [CrossRef] | |
N. Kundtz and D. R. Smith, “Extreme-angle broadband metamaterial lens,” Nature Materials 9, 129 – 32 (2010). [CrossRef] | |
D. A. Roberts, N. Kundtz, and D. R. Smith, “Optical lens compression via transformation optics,” Opt. Express 17, 16535–16542 (2009). [CrossRef] [PubMed] | |
D. H. Kwon and D. H. Werner, “Transformation optical designs for wave collimators, flat lenses and right-angle bends,” New J. of Phys. 10, 115023 (2008). [CrossRef] | |
N. Engheta, “Antenna-guided light,” Science 21, 317–318 (2011). [CrossRef] | |
M. Rahm, D. A. Roberts, J. B. Pendry, and D. R. Smith, “Transformation-optical design of adaptive beam bends and beam expanders,” Opt. Express 16, 11555–11567 (2008). [CrossRef] [PubMed] | |
F. Kong, B.-I. Wu, J. A. Kong, J. Huangfu, S. Xi, and H. Chen, “Planar focusing antenna design by using coordinate transformation technology,” Appl. Phys. Lett. 91, 253509 –253509–3 (2007). [CrossRef] | |
P. H. Tichit, S. N. Burokur, and A. de Lustrac, “Ultradirective antenna via transformation optics,” J. Appl. Phys. 105, 104912 –104912–6 (2009). [CrossRef] | |
H. Chen, B.-I. Wu, L. Ran, T. M. Grzegorczyk, and J. A. Kong, “Controllable left-handed metamaterial and its application to a steerable antenna,” Appl. Phys. Lett. 89, 053509 (2006). [CrossRef] | |
Z. L. Mei and T. J. Cui, “Experimental realization of a broadband bend structure using gradient index metamaterials,” Opt. Express 17, 18354–18363 (2009). [CrossRef] [PubMed] | |
K. Aydin and E. Ozbay, “Capacitor-loaded split ring resonators as tunable metamaterial components,” J. Appl. Phys. 101, 024911 (2007). [CrossRef] | |
D. Schurig, J. J. Mock, B. J. Justice, S. A. Cummer, J. B. Pendry, A. F. Starr, and D. R. Smith, “Metamaterial electromagnetic cloak at microwave frequencies,” Science 314, 977–980 (2006). [CrossRef] [PubMed] | |
M. Riel and J. J. Laurin, “Design of an electronically beam scanning reflectarray using aperture-coupled elements,” IEEE Trans. Antennas Propag. 55, 1260 –1266 (2007). [CrossRef] | |
S. V. Hum, M. Okoniewski, and R. J. Davies, “Modeling and design of electronically tunable reflectarrays,” IEEE Trans. Antennas Propag. 55, 2200 –2210 (2007). [CrossRef] | |
M. Arrebola, J. A. Encinar, R. Cahill, and G. Toso, “Dual-reflector antenna with a reflectarray subreflector for wide beam scanning range at 120 GHz,” Int. Conf. Electromagn. in Advanced Applications , 848–851 (2012). | |
A. Gaebler, A. Moessinger, F. Goelden, A. Manabe, M. Goebel, R. Follmann, D. Koether, C. Modes, A. Kipka, M. Deckelmann, T. Rabe, B. Schulz, P. Kuchenbecker, A. Lapanik, S. Mueller, W. Haase, and R. Jakoby, “Liquid crystal-reconfigurable antenna concepts for space applications at microwave and millimeter waves,” Int. J. of Antennas Propag. (2009). [CrossRef] | |
L. Cabria, J. A. Garcia, J. Gutierrez-Rios, A. Tazon, and J. Vassal’lo, “Active reflectors: Possible solutions based on reflectarrays and Fresnel reflectors,” Int. J. Antennas Propag. (2009). [CrossRef] | |
J. Gutierrez-Rios and J. V. Sanz, “Simulated response of conic Fresnel zone plate reflectors (CFZPS),” in Europ. Conf. Antennas Propag. (2006). [CrossRef] | |
Y. Ji and M. Fujita, “Design and analysis of a folded Fresnel zone plate antenna,” Int. J. of Infrared and Millimeter Waves 15, 1385–1406 (1994). [CrossRef] | |
R. Yang, W. Tang, and Y. Hao, “Wideband beam-steerable flat reflectors via transformation optics,” IEEE Antennas Wireless Propag. Lett. 10, 1290 –1294 (2011). [CrossRef] | |
L. Tang, J. Yin, G. Yuan, J. Du, H. Gao, X. Dong, Y. Lu, and C. Du, “General conformal transformation method based on Schwarz-Christoffel approach,” Opt. Express 19, 15119–15126 (2011). [CrossRef] [PubMed] | |
U. Leonhardt, “Optical conformal mapping,” Science 23, 1777–1780 (2006). [CrossRef] | |
W. Tang, C. Argyropoulos, E. Kallos, W. Song, and Y. Hao, “Discrete coordinate transformation for designing all-dielectric flat antennas,” IEEE Trans. Antennas Propag. 58, 3795 –3804 (2010). [CrossRef] | |
Y. G. Ma, N. Wang, and C. K. Ong, “Application of inverse, strict conformal transformation to design waveguide devices,” J. Opt. Soc. Am. A 27, 968–972 (2010). [CrossRef] | |
T. A. Driscoll, A MATLAB toolbox for Schwartz-Christoffel mapping (ACM Trans. Math. Softw., 1996). | |
D. Wunsch, Complex Variables with Applications (Addison Wesley, 1993). | |
N. Kundtz, D. R. Smith, and J. B. Pendry, “Electromagnetic design with transformation optics,” Proceedings of the IEEE 99, 1622 –1633 (2011). [CrossRef] | |
J. P. Turpin, Z. H. Jiang, P. L. Werner, and D. H. Werner, “Tunable metamaterials for conformally mapped transformation optics lenses,” IEEE Proc. AP–S Int. Symp. Antennas Propag. (2010). | |
S. V. Hum, M. Okoniewski, and R. J. Davies, “Realizing an electronically tunable reflectarray using varactor diode-tuned elements,” IEEE Microw. Wireless Compon. Lett. (2005). [CrossRef] |
OCIS Codes
(230.0230) Optical devices : Optical devices
(260.2110) Physical optics : Electromagnetic optics
(160.3918) Materials : Metamaterials
(260.2710) Physical optics : Inhomogeneous optical media
(220.1080) Optical design and fabrication : Active or adaptive optics
ToC Category:
Physical Optics
History
Original Manuscript: November 30, 2012
Revised Manuscript: January 4, 2013
Manuscript Accepted: January 5, 2013
Published: January 18, 2013
Virtual Issues
Vol. 8, Iss. 2 Virtual Journal for Biomedical Optics
Citation
Liang Liang and Sean V. Hum, "Wide-angle scannable reflector design using conformal transformation optics," Opt. Express 21, 2133-2146 (2013)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-21-2-2133
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References
- T. Tyc and U. Leonhardt, “Broadband invisibility by non-euclidean cloaking,” Science323, 110–112 (2009). [CrossRef]
- R. Schmied, J. C. Halimeh, and M. Wegener, “Conformal carpet and grating cloaks,” Opt. Express18, 24361–24367 (2010). [CrossRef] [PubMed]
- J. Li and J. B. Pendry, “Hiding under the carpet: A new strategy for cloaking,” Phys. Rev. Lett.101, 203901 (2008). [CrossRef] [PubMed]
- D. Schurig, “An aberration-free lens with zero f-number,” New J. of Phys.10, 115034 (2008). [CrossRef]
- N. Kundtz and D. R. Smith, “Extreme-angle broadband metamaterial lens,” Nature Materials9, 129 – 32 (2010). [CrossRef]
- D. A. Roberts, N. Kundtz, and D. R. Smith, “Optical lens compression via transformation optics,” Opt. Express17, 16535–16542 (2009). [CrossRef] [PubMed]
- D. H. Kwon and D. H. Werner, “Transformation optical designs for wave collimators, flat lenses and right-angle bends,” New J. of Phys.10, 115023 (2008). [CrossRef]
- N. Engheta, “Antenna-guided light,” Science21, 317–318 (2011). [CrossRef]
- M. Rahm, D. A. Roberts, J. B. Pendry, and D. R. Smith, “Transformation-optical design of adaptive beam bends and beam expanders,” Opt. Express16, 11555–11567 (2008). [CrossRef] [PubMed]
- F. Kong, B.-I. Wu, J. A. Kong, J. Huangfu, S. Xi, and H. Chen, “Planar focusing antenna design by using coordinate transformation technology,” Appl. Phys. Lett.91, 253509 –253509–3 (2007). [CrossRef]
- P. H. Tichit, S. N. Burokur, and A. de Lustrac, “Ultradirective antenna via transformation optics,” J. Appl. Phys.105, 104912 –104912–6 (2009). [CrossRef]
- H. Chen, B.-I. Wu, L. Ran, T. M. Grzegorczyk, and J. A. Kong, “Controllable left-handed metamaterial and its application to a steerable antenna,” Appl. Phys. Lett.89, 053509 (2006). [CrossRef]
- Z. L. Mei and T. J. Cui, “Experimental realization of a broadband bend structure using gradient index metamaterials,” Opt. Express17, 18354–18363 (2009). [CrossRef] [PubMed]
- K. Aydin and E. Ozbay, “Capacitor-loaded split ring resonators as tunable metamaterial components,” J. Appl. Phys.101, 024911 (2007). [CrossRef]
- D. Schurig, J. J. Mock, B. J. Justice, S. A. Cummer, J. B. Pendry, A. F. Starr, and D. R. Smith, “Metamaterial electromagnetic cloak at microwave frequencies,” Science314, 977–980 (2006). [CrossRef] [PubMed]
- M. Riel and J. J. Laurin, “Design of an electronically beam scanning reflectarray using aperture-coupled elements,” IEEE Trans. Antennas Propag.55, 1260 –1266 (2007). [CrossRef]
- S. V. Hum, M. Okoniewski, and R. J. Davies, “Modeling and design of electronically tunable reflectarrays,” IEEE Trans. Antennas Propag.55, 2200 –2210 (2007). [CrossRef]
- M. Arrebola, J. A. Encinar, R. Cahill, and G. Toso, “Dual-reflector antenna with a reflectarray subreflector for wide beam scanning range at 120 GHz,” Int. Conf. Electromagn. in Advanced Applications, 848–851 (2012).
- A. Gaebler, A. Moessinger, F. Goelden, A. Manabe, M. Goebel, R. Follmann, D. Koether, C. Modes, A. Kipka, M. Deckelmann, T. Rabe, B. Schulz, P. Kuchenbecker, A. Lapanik, S. Mueller, W. Haase, and R. Jakoby, “Liquid crystal-reconfigurable antenna concepts for space applications at microwave and millimeter waves,” Int. J. of Antennas Propag. (2009). [CrossRef]
- L. Cabria, J. A. Garcia, J. Gutierrez-Rios, A. Tazon, and J. Vassal’lo, “Active reflectors: Possible solutions based on reflectarrays and Fresnel reflectors,” Int. J. Antennas Propag. (2009). [CrossRef]
- J. Gutierrez-Rios and J. V. Sanz, “Simulated response of conic Fresnel zone plate reflectors (CFZPS),” in Europ. Conf. Antennas Propag. (2006). [CrossRef]
- Y. Ji and M. Fujita, “Design and analysis of a folded Fresnel zone plate antenna,” Int. J. of Infrared and Millimeter Waves15, 1385–1406 (1994). [CrossRef]
- R. Yang, W. Tang, and Y. Hao, “Wideband beam-steerable flat reflectors via transformation optics,” IEEE Antennas Wireless Propag. Lett.10, 1290 –1294 (2011). [CrossRef]
- L. Tang, J. Yin, G. Yuan, J. Du, H. Gao, X. Dong, Y. Lu, and C. Du, “General conformal transformation method based on Schwarz-Christoffel approach,” Opt. Express19, 15119–15126 (2011). [CrossRef] [PubMed]
- U. Leonhardt, “Optical conformal mapping,” Science23, 1777–1780 (2006). [CrossRef]
- W. Tang, C. Argyropoulos, E. Kallos, W. Song, and Y. Hao, “Discrete coordinate transformation for designing all-dielectric flat antennas,” IEEE Trans. Antennas Propag.58, 3795 –3804 (2010). [CrossRef]
- Y. G. Ma, N. Wang, and C. K. Ong, “Application of inverse, strict conformal transformation to design waveguide devices,” J. Opt. Soc. Am. A27, 968–972 (2010). [CrossRef]
- T. A. Driscoll, A MATLAB toolbox for Schwartz-Christoffel mapping (ACM Trans. Math. Softw., 1996).
- D. Wunsch, Complex Variables with Applications (Addison Wesley, 1993).
- N. Kundtz, D. R. Smith, and J. B. Pendry, “Electromagnetic design with transformation optics,” Proceedings of the IEEE99, 1622 –1633 (2011). [CrossRef]
- J. P. Turpin, Z. H. Jiang, P. L. Werner, and D. H. Werner, “Tunable metamaterials for conformally mapped transformation optics lenses,” IEEE Proc. AP–S Int. Symp. Antennas Propag. (2010).
- S. V. Hum, M. Okoniewski, and R. J. Davies, “Realizing an electronically tunable reflectarray using varactor diode-tuned elements,” IEEE Microw. Wireless Compon. Lett. (2005). [CrossRef]
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