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from v-shaped srr structure: fabrication and characterization. JOSA B 31(7), 1410–1414
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Terahertz magnetic response from artificial materials. Science 303(5663), 1494–1496 (2004)
34. H-K. Yuan, U.K. Chettiar, W. Cai, A.V. Kildishev, A. Boltasseva, V.P. Drachev, V.M. Shalaev,
A negative permeability material at red light. Opt. Express 15(3), 1076–1083 (2007)
35. Q. Zhao, J. Zhou, F. Zhang, D. Lippens, Mie resonance-based dielectric metamaterials. Mater.
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36. C. Kittel, Introduction to Solid State Physics, vol. 8 (Wiley, New York, 2004)
37. J.D. Joannopoulos, S.G. Johnson, J.N. Winn, R.D. Meade, Photonic Crystals: Molding the
Flow of Light (Princeton university press, 2011)
38. E. Yablonovitch, Inhibited spontaneous emission in solid-state physics and electronics. Phys.
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39. S. John, Strong localization of photons in certain disordered dielectric superlattices. Phys.
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41. Y. Cao, Z. Hou, Y. Liu, Convergence problem of plane-wave expansion method for phononic
crystals. Phys. Lett. A 327(2–3), 247–253 (2004)
42. S. Shi, C. Chen, D.W. Prather, Plane-wave expansion method for calculating band structure
of photonic crystal slabs with perfectly matched layers. JOSA A 21(9), 1769–1775 (2004)
43. K.S. Yee, J.S. Chen, The finite-difference time-domain (fdtd) and the finite-volume timedomain (fvtd) methods in solving maxwell’s equations. IEEE Trans. Antenn. Propag. 45(3),
354–363 (1997)
44. A. Taflove, S.C. Hagness, Computational Electrodynamics: The Finite-Difference TimeDomain Method (Artech house, 2005)
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47. COMSOL Inc. Comsol multiphysics
48. S.G. Johnson, J.D. Joannopoulos, Block-iterative frequency-domain methods for maxwell’s
equations in a planewave basis. Opt. Express 8(3), 173–190 (2001)
49. Y.A. Arbabi, M.B. Horie, A. Faraon, Dielectric metasurfaces for complete control of phase and
polarization with subwavelength spatial resolution and high transmission. Nat. Nanotechnol.
10, 937–943 (2015)
References
24. N. Engheta, R.W. Ziolkowski Metamaterials: Physics and Engineering Explorations (Wiley,
2006)
25. S. Enoch, G. Tayeb, P. Sabouroux, N. Guérin, P. Vincent, A metamaterial for directive emission. Phys. Rev. Lett. 89(21), 213902 (2002)
26. C.L. Holloway, E.F. Kuester, J.A. Gordon, J.O. Hara, J. Booth, D.R. Smith, An overview of the
theory and applications of metasurfaces: The two-dimensional equivalents of metamaterials.
Antenn. Propag. Mag. IEEE 54(2), 10–35 (2012)
27. X. Huang, Y. Lai, Z.H. Hang, H. Zheng, C.T. Chan, Dirac cones induced by accidental
degeneracy in photonic crystals and zero-refractive-index materials. Nat. Mater. 10(8), 582
(2011)
28. S. Jahani, Z. Jacob, All-dielectric metamaterials. Nat. Nanotechnol. 11(1), 23–36 (2016)
29. K. Kishor, M.N. Baitha, R.K. Sinha, B. Lahiri.,Tunable negative refractive index metamaterial
from v-shaped srr structure: fabrication and characterization. JOSA B 31(7), 1410–1414
(2014)
30. S.A. Ramakrishna, Physics of negative refractive index materials. Rep. Prog. Phys. 68(2), 449
(2005)
31. C. Rockstuhl, C. Menzel, T. Paul, T. Pertsch, F. Lederer, Light propagation in a fishnet metamaterial. Phys. Rev. B 78(15), 155102 (2008)
32. J. Valentine, S. Zhang, T. Zentgraf, X. Zhang, Development of bulk optical negative index
fishnet metamaterials: achieving a low-loss and broadband response through coupling. Proc.
IEEE 99(10), 1682–1690 (2011)
33. T-J. Yen, W.J. Padilla, N. Fang, D.C. Vier, D.R. Smith, J.B. Pendry, D.N. Basov, X. Zhang,
Terahertz magnetic response from artificial materials. Science 303(5663), 1494–1496 (2004)
34. H-K. Yuan, U.K. Chettiar, W. Cai, A.V. Kildishev, A. Boltasseva, V.P. Drachev, V.M. Shalaev,
A negative permeability material at red light. Opt. Express 15(3), 1076–1083 (2007)
35. Q. Zhao, J. Zhou, F. Zhang, D. Lippens, Mie resonance-based dielectric metamaterials. Mater.
Today 12(12), 60–69 (2009)
36. C. Kittel, Introduction to Solid State Physics, vol. 8 (Wiley, New York, 2004)
37. J.D. Joannopoulos, S.G. Johnson, J.N. Winn, R.D. Meade, Photonic Crystals: Molding the
Flow of Light (Princeton university press, 2011)
38. E. Yablonovitch, Inhibited spontaneous emission in solid-state physics and electronics. Phys.
Rev. Lett. 58(20), 2059 (1987)
39. S. John, Strong localization of photons in certain disordered dielectric superlattices. Phys.
Rev. Lett. 58(23), 2486 (1987)
40. K. Sakoda, Optical Properties of Photonic Crystals, vol. 80 (Springer Science & Business
Media, 2004)
41. Y. Cao, Z. Hou, Y. Liu, Convergence problem of plane-wave expansion method for phononic
crystals. Phys. Lett. A 327(2–3), 247–253 (2004)
42. S. Shi, C. Chen, D.W. Prather, Plane-wave expansion method for calculating band structure
of photonic crystal slabs with perfectly matched layers. JOSA A 21(9), 1769–1775 (2004)
43. K.S. Yee, J.S. Chen, The finite-difference time-domain (fdtd) and the finite-volume timedomain (fvtd) methods in solving maxwell’s equations. IEEE Trans. Antenn. Propag. 45(3),
354–363 (1997)
44. A. Taflove, S.C. Hagness, Computational Electrodynamics: The Finite-Difference TimeDomain Method (Artech house, 2005)
45. J.-M. Jin, The Finite Element Method in Electromagnetics (Wiley, 2015)
46. N.O. Matthew, Sadiku, Numerical Techniques in Electromagnetics with MATLAB (CRC Press,
2018)
47. COMSOL Inc. Comsol multiphysics
48. S.G. Johnson, J.D. Joannopoulos, Block-iterative frequency-domain methods for maxwell’s
equations in a planewave basis. Opt. Express 8(3), 173–190 (2001)
49. Y.A. Arbabi, M.B. Horie, A. Faraon, Dielectric metasurfaces for complete control of phase and
polarization with subwavelength spatial resolution and high transmission. Nat. Nanotechnol.
10, 937–943 (2015)
