Theory of supercoupling, squeezing wave energy, and field confinement in narrow channels and tight bends using ε near-zero metamaterials
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[1] Gianluca Lazzi. IEEE AWPL Antennas and Wireless Propagation Letters , 2007, IEEE Antennas and Propagation Magazine.
[2] N. Engheta,et al. Parallel-plate metamaterials for cloaking structures. , 2007, Physical review. E, Statistical, nonlinear, and soft matter physics.
[3] N. Engheta,et al. Design of matched zero-index metamaterials using nonmagnetic inclusions in epsilon-near-zero media , 2006, cond-mat/0609675.
[4] P. Belov,et al. Subwavelength imaging at infrared frequencies using an array of metallic nanorods , 2006, cond-mat/0609393.
[5] Nader Engheta,et al. Tunneling of electromagnetic energy through subwavelength channels and bends using epsilon-near-zero materials. , 2006, Physical review letters.
[6] Stefan A Maier,et al. Terahertz surface plasmon-polariton propagation and focusing on periodically corrugated metal wires. , 2006, Physical review letters.
[7] H. Miyazaki,et al. Squeezing visible light waves into a 3-nm-thick and 55-nm-long plasmon cavity. , 2006, Physical review letters.
[8] Nader Engheta,et al. Optical nanotransmission lines: synthesis of planar left-handed metamaterials in the infrared and visible regimes , 2006, physics/0603052.
[9] M. Silveirinha. Nonlocal homogenization model for a periodic array of epsilon-negative rods. , 2006, Physical review. E, Statistical, nonlinear, and soft matter physics.
[10] V. Podolskiy,et al. Metamaterial photonic funnels for subdiffraction light compression and propagation , 2005, physics/0512189.
[11] H. Kurz,et al. Transmission of THz radiation through InSb gratings of subwavelength apertures. , 2005, Optics express.
[12] M. Stockman,et al. Nanofocusing of optical energy in tapered plasmonic waveguides. , 2004, Physical review letters.
[13] D. Fredkin,et al. Resonant behavior of dielectric objects (electrostatic resonances). , 2003, Physical review letters.
[14] S. Tretyakov,et al. Strong spatial dispersion in wire media in the very large wavelength limit , 2002, cond-mat/0211204.
[15] F. Medina,et al. Left-handed-media simulation and transmission of EM waves in subwavelength split-ring-resonator-loaded metallic waveguides. , 2002, Physical review letters.
[16] N. Engheta,et al. An idea for thin subwavelength cavity resonators using metamaterials with negative permittivity and permeability , 2002, IEEE Antennas and Wireless Propagation Letters.
[17] J. Pendry,et al. Negative refraction makes a perfect lens , 2000, Physical review letters.
[18] J. Bladel. Singular electromagnetic fields and sources , 1996 .
[19] R. J. Bell,et al. Optical properties of fourteen metals in the infrared and far infrared: Al, Co, Cu, Au, Fe, Pb, Mo, Ni, Pd, Pt, Ag, Ti, V, and W. , 1985, Applied optics.
[20] R. J. Bell,et al. Optical properties of the metals Al, Co, Cu, Au, Fe, Pb, Ni, Pd, Pt, Ag, Ti, and W in the infrared and far infrared. , 1983, Applied optics.
[21] R. W. Christy,et al. Optical Constants of the Noble Metals , 1972 .
[22] D. A. Dunnett. Classical Electrodynamics , 2020, Nature.
[23] W. Rotman. Plasma simulation by artificial dielectrics and parallel-plate media , 1962 .
[24] R. Collin. Field theory of guided waves , 1960 .
[25] Nicholas Chako,et al. Wave propagation and group velocity , 1960 .
[26] D. A. Kleinman,et al. Infrared Properties of Hexagonal Silicon Carbide , 1959 .