1. Shelby, R. A., D. R. Smith, and S. Schultz, "Experimental verification of a negative index of refraction," Science, Vol. 292, 77-79, 2001.
doi:10.1126/science.1058847 Google Scholar
2. Landy, N. I., S. Sajuyigbe, J. J. Mock, D. R. Smith, and W. J. Padilla, "Perfect metamaterial absorber," Phys. Rev. Lett., Vol. 100, 207402, 2008.
doi:10.1103/PhysRevLett.100.207402 Google Scholar
3. Zhu, B., Z. Wang, C. Huang, Y. Feng, J. Zhao, and T. Jiang, "Polarization insensitive metamaterial absorber with wide incident angle," Progress In Electromagnetics Research, Vol. 101, 231-239, 2010.
doi:10.2528/PIER10011110 Google Scholar
4. Li, M., H.-L. Yang, X.-W. Hou, Y. Tian, and D.-Y. Hou, "Perfect metamaterial absorber with dual bands," Progress In Electromagnetics Research, Vol. 108, 37-49, 2010.
doi:10.2528/PIER10071409 Google Scholar
5. Huang, L. and H. Chen, "Multi-band and polarization insensitive metamaterial absorber," Progress In Electromagnetics Research, Vol. 113, 103-110, 2011. Google Scholar
6. He, X.-J., Y. Wang, J. Wang, T. Gui, and Q. Wu, "Dual-band terahertz metamaterial absorber with polarization insensitivity and wide incident angle," Progress In Electromagnetics Research, Vol. 115, 381-397, 2011. Google Scholar
7. Pendry, J. B., A. J. Holden, D. J. Robbins, and W. J. Stewart, "Magnetism from conductors and enhanced nonlinear phenomena," IEEE Trans. Microw. Theory Tech., Vol. 47, 2075-2084, 1999.
doi:10.1109/22.798002 Google Scholar
8. Pendry, J. B., A. J. Holden, W. J. Stewart, and I. Youngs, "Extremely low frequency plasmons in metallic mesostructures," Phys. Rev. Lett., Vol. 76, 4773-4776, 1996.
doi:10.1103/PhysRevLett.76.4773 Google Scholar
9. Marqués, R., F. Mesa, J. Martel, and F. Medina, "Comparative analysis of edge and broadside coupled split ring resonators for metamaterial design --- Theory and experiments," IEEE Trans. Antennas Propag., Vol. 51, 2572-2581, 2003.
doi:10.1109/TAP.2003.817562 Google Scholar
10. Chen, H., L.-X. Ran, J. T. Huang-Fu, X.-M. Zhang, K.-S. Cheng, T. M. Grzegorczyk, and J. A. Kong, "Magnetic properties of S-shaped split-ring resonators," Progress In Electromagnetics Research, Vol. 51, 231-247, 2005.
doi:10.2528/PIER04051201 Google Scholar
11. Chen, H., L. Ran, J. Huangfu, X. Zhang, K. Chen, T. M. Grzegorczyk, and J. A. Kong, "Left-handed materials composed of only S-shaped resonators," Phys. Rev. E, Vol. 70, 057605, 2004.
doi:10.1103/PhysRevE.70.057605 Google Scholar
12. Feng, T., Y. Li, H. Jiang, W. Li, F. Yang, X. Dong, and H. Chen, "Tunable single-negative metamaterials based on microstrip transmission line with varactor diodes loading," Progress In Electromagnetics Research, Vol. 120, 35-50, 2011. Google Scholar
13. Ourir, A., R. Abdeddaim, and J. de Rosny, "Tunable trapped mode in symmetric resonator designed for metamaterials," Progress In Electromagnetics Research, Vol. 101, 115-123, 2010.
doi:10.2528/PIER09120709 Google Scholar
14. Smith, D. R., S. Schultz, P. Marko·s, and C. M. Soukoulis, "Determination of effective permittivity and permeability of metamaterials from reflection and transmission coefficients," Phys. Rev. B, Vol. 65, 195104, 2002.
doi:10.1103/PhysRevB.65.195104 Google Scholar
15. Chen, X., T. M. Grzegorczyk, B.-I. Wu, J. Pacheco, and J. A. Kong, "Robust method to retrieve the constitutive effective parameters of metamaterials," Phys. Rev. E, Vol. 70, 016608, 2004.
doi:10.1103/PhysRevE.70.016608 Google Scholar
16. Croënne, C., B. Fabre, D. Gaillot, O. Vanbésien, and D. Lippens, "Bloch impedance in negative index photonic crystals," Phys. Rev. B, Vol. 77, 125333, 2008.
doi:10.1103/PhysRevB.77.125333 Google Scholar
17. Liu, H., J. X. Cao, S. N. Zhu, N. Liu, R. Ameling, and H. Giessen, "Lagrange model for the chiral optical properties of stereometamaterials," Phys. Rev. B, Vol. 81, 241403(R), 2010. Google Scholar
18. Liu, H., Y. M. Liu, T. Li, S. M. Wang, S. N. Zhu, and X. Zhang, "Coupled magnetic plasmons in metamaterials," Phys. Status Solidi B, Vol. 246, 1397, 2009.
doi:10.1002/pssb.200844414 Google Scholar
19. Liu, N. and H. Giessen, "Coupling effects in optical metamaterials," Angew. Chem. Int. Ed., Vol. 49, 9838-9852, 2010.
doi:10.1002/anie.200906211 Google Scholar
20. Feth, N., M. König, M. Husnik, K. Stannigel, J. Niegemann, K. Busch, M. Wegener, and S. Linden, "Electromagnetic interaction of split-ring resonators: The role of separation and relative orientation," Opt. Express, Vol. 18, 6545-6554, 2010.
doi:10.1364/OE.18.006545 Google Scholar
21. Sersic, I., M. Frimmer, E. Verhagen, and A. F. Koenderink, "Electric and magnetic dipole coupling in near-infrared split-ring metamaterial arrays ," Phys. Rev. Lett., Vol. 103, 213902, 2010.
doi:10.1103/PhysRevLett.103.213902 Google Scholar
22. Carbonell, J., E. Lheurette, and D. Lippens, "From rejection to transmission with stacked arrays of split ring resonators," Progress In Electromagnetics Research, Vol. 112, 215-224, 2011. Google Scholar
23. Zhang, F., Q. Zhao, J. Sun, J. Zhou, and D. Lippens, "Coupling effect of split ring resonator and its mirror image," Progress In Electromagnetics Research, Vol. 124, 233-247, 2012.
doi:10.2528/PIER11121808 Google Scholar
24. Lewin, L., "The electrical constants of a material loaded with spherical particles," Proc. Inst. Electr. Eng., Vol. 94, 65-68, 1947. Google Scholar
25. Bohren, C. F. and D. R. Huffman, Absorption and Scattering of Light by Small Particles, Wiley, New York, 1998.
26. O'Brien, S. and J. B. Pendry, "Photonic band-gap effects and magnetic activity in dielectric composites," J. Phys. Condens. Matt., Vol. 14, 4035-4044, 2002.
doi:10.1088/0953-8984/14/15/317 Google Scholar
27. Holloway, C. H., E. F. Kuester, J. Baker-Jarvis, and P. Kabos, "A double negative (dng) composite medium composed of magnetodielectric spherical particles embedded in a matrix," IEEE Trans. Antennas Propag., Vol. 51, 2596-2603, 2003.
doi:10.1109/TAP.2003.817563 Google Scholar
28. Zhao, Q., J. Zhou, F. Zhang, and D. Lippens, "Mie resonance-based dielectric metamaterial," Mater. Today, Vol. 12, 36-45, 2009.
doi:10.1016/S1369-7021(09)70318-9 Google Scholar
29. Liu, L., J. Sun, X. Fu, J. Zhou, Q. Zhao, B. Fu, J. Liao, and D. Lippens, "Artificial magnetic properties of dielectric metamaterials in terms of effective circuit model," Progress In Electromagnetics Research, Vol. 116, 159-170, 2011. Google Scholar
30. Kang, L., V. Sadaune, and D. Lippens, "Numerical analysis of enhanced transmission through a single subwavelength aperture based on mie resonance single particle," Progress In Electromagnetics Research, Vol. 113, 211-226, 2011. Google Scholar
31. Lepetit, T., E. Akmansoy, and J.-P. Ganne, "Experimental measurement of negative index in an all-dielectric metamaterial," Appl. Phys. Lett., Vol. 95, 121101, 2009.
doi:10.1063/1.3232222 Google Scholar
32. Lin, X. Q., T. J. Cui, J. Y. Chin, X. M. Yang, Q. Cheng, and R. Liu, "Controlling electromagnetic waves using tunable gradient dielectric metamaterial lens," Appl. Phys. Lett., Vol. 92, 131904, 2008.
doi:10.1063/1.2896308 Google Scholar
33. Kozlov, D. S., M. A. Odit, I. B. Vendik, Y.-G. Roh, S. Cheon, and C.-W. Lee, "Tunable terahertz metamaterial based on resonant dielectric inclusions with disturbed Mie resonance," Appl. Phys. A, Vol. 106, 465-470, 2012.
doi:10.1007/s00339-011-6716-2 Google Scholar
34. Peng, L., L. Ran, H. Chen, H. Zhang, J. A. Kong, and T. M. Grzegorczyk, "Experimental observation of left-handed behavior in an array of standard dielectric resonators," Phys. Rev. Lett., Vol. 98, 157403, 2007.
doi:10.1103/PhysRevLett.98.157403 Google Scholar
35. Zhao, Q., L. Kang, B. Du, H. Zhao, Q. Xie, X. Huang, B. Li, J. Zhou, and L. Li, "Experimental demonstration of isotropic negative permeability in a three-dimensional dielectric composite," Phys. Rev. Lett., Vol. 101, 027402, 2008.
doi:10.1103/PhysRevLett.101.027402 Google Scholar
36. Zhang, F., Q. Zhao, L. Kang, J. Zhou, and D. Lippens, "Experimental verification of isotropic and polarization properties of high permittivity-based metamaterial," Phys. Rev. B, Vol. 80, 195119, 2009.
doi:10.1103/PhysRevB.80.195119 Google Scholar
37. Schuller, J. A., R. Zia, T. Taubner, and M. L. Brongersma, "Dielectric metamaterials based on electric and magnetic resonances of silicon carbide particles," Phys. Rev. Lett., Vol. 99, 107401, 2007.
doi:10.1103/PhysRevLett.99.107401 Google Scholar
38. Popa, B.-I. and S. A. Cummer, "Full-wave simulations of electromagnetic cloaking structures," Phys. Rev. Lett., Vol. 100, 207401, 2008.
doi:10.1103/PhysRevLett.100.207401 Google Scholar
39. Ginn, J. C., I. Brene, D. W. Peters, J. R. Wendt, J. O. Stevens, P. F. Hines, L. I. Basilio, L. K. Warne, J. F. Ihlefeld, P. G. Clem, and M. B. Sinclair, "Realizing optical magnetism from dielectric metamaterials," Phys. Rev. Lett., Vol. 108, 097402, 2012.
doi:10.1103/PhysRevLett.108.097402 Google Scholar
40. Miroshnichenko, A. E., B. Luk'yanchuk, S. A. Maier, and Y. S. Kivshar, "Optically induced interaction of magnetic moments in hybrid metamaterials," Acs Nano, Vol. 6, 837-842, 2012.
doi:10.1021/nn204348j Google Scholar
41. Lai, Y. J., C. K. Chen, and T. J. Yen, "Creating negative refractive identity via single dielectric resonators," Opt. Express, Vol. 17, 12960-12970, 2009.
doi:10.1364/OE.17.012960 Google Scholar
42. Wheeler, M. S., J. S. Aitchison, and M. Mojahedi, "Coupled magnetic dipole resonances in sub-wavelength dielectric particle clusters," J. Opt. Soc. Am. B, Vol. 27, 1083-1091, 2010.
doi:10.1364/JOSAB.27.001083 Google Scholar
43. Zhang, F., L. Kang, Q. Zhao, J. Zhou, and D. Lippens, "Magnetic and electric coupling effects of dielectric metamaterial," New J. Phys., Vol. 14, 033031, 2012.
doi:10.1088/1367-2630/14/3/033031 Google Scholar
44. Cao, L., P. Fan, and M. L. Brongersma, "Optical coupling of deep-subwavelength semiconductor nanowires," Nano Lett., Vol. 11, 1461-1468, 2010. Google Scholar
45. Hao, E. and G. C. Schatz, "Electromagnetic fields around silver nanoparticles and dimmers," J. Chem. Phys., Vol. 120, 357-366, 2004.
doi:10.1063/1.1629280 Google Scholar