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Articles

The properties of unusual surface plasmon modes and switching gaps in the three-dimensional photonic crystals composed of plasma-coated spheres

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Pages 1347-1359 | Received 12 Feb 2014, Accepted 29 Apr 2014, Published online: 02 Jun 2014

References

  • Yablonovitch E. Inhibited spontaneous emission in solid-state physics and electronics. Phys. Rev. Lett. 1987;58:2059–2062.10.1103/PhysRevLett.58.2059
  • John S. Strong localization of photons in certain disordered dielectric superlattices. Phys. Rev. Lett. 1987;58:2486–2489.10.1103/PhysRevLett.58.2486
  • Sakai O, Tachibana K. Plasmas as metamaterials: a review. Plasma Sources Sci. Technol. 2012;21:013001.10.1088/0963-0252/21/1/013001
  • Hojo H, Mase A. Dispersion relation of electromagnetic waves in one-dimensional plasma photonic crystals. J. Plasma Fusion Res. 2004;80:89–90.10.1585/jspf.80.89
  • Zhang HF, Ma L., Liu SB. Study of periodic band gap structure of the magnetized plasma photonic crystals. Optelectron. Lett. 2009;5:112–116.10.1007/s11801-009-8165-0
  • Prasad S, Singh V, Singh AK. Effect of inhomogeneous plasma density on the reflectivity in one dimensional plasma photonic photonic crystals. Prog. Electromag. Res. M. 2011;21:211–222.10.2528/PIERM11091702
  • Qi L, Yang Z, Fu T. Defect modes in one-dimensional magnetized plasma photonic crystals with a dielectric defect layer. Phys. Plasmas. 2012;19:012509.10.1063/1.3677876
  • Zhang HF, Li M, Liu SB. Defect mode properties of magnetized plasma photonic crystals. Acta Phys. Sin. 2009;58:1071–1076.
  • Zhang HF, Liu SB, Kong XK. Defect mode properties of two-dimensional unmagnetized plasma photonic crystals with line-defect under transverse magnetic mode. Acta Phys. Sin. 2011;60:025215.
  • Zhang HF. Enhancement of omnidirectional photonic band gaps in one-dimensional dielectric plasma photonic crystals with a matching layer. Phys. Plasmas. 2012;19:022103.10.1063/1.3680628
  • Hamidi SM. Optical and magneto-optical properties of one-dimensional magnetized coupled resonator plasma photonic crystals. Phys. Plasmas. 2012;19:012503.10.1063/1.3677263
  • Mehdian H. Analysis of plasma-magnetic photonic crystal with a tunable band gap. Phys. Plasmas. 2013;20:043505.10.1063/1.4795306
  • Fu T, Yang Z, Shi Z, Lan F, Li D, Gao X. Dispersion properties of a 2D magnetized plasma metallic photonic crystal. Phys. Plasmas. 2013;20:023109.10.1063/1.4792264
  • Zhang HF, Liu SB, Kong XK, Bian BR, Guo YN. Dispersion properties of two-dimensional plasma photonic crystals with periodically external magnetic field. Solid State Commun. 2012;152:1221–1229.10.1016/j.ssc.2012.04.055
  • Qi L, Zhang X. Band gap characteristics of plasma with periodically varying external magnetic field. Solid State Commun. 2011;151:1838–1841.10.1016/j.ssc.2011.08.012
  • Guo B. Negative refraction in one- and two-dimensional lossless plasma dielectric photonic crystals. Phys. Plasmas. 2013;20:074504.10.1063/1.4816808
  • Sakaguchi T, Sakai O, Tachibana K. Photonic bands in two-dimensional microplasma arrays. II. Band gaps observed in millimeter and sub-terahertz ranges. J. Appl. Phys. 2007;101:073305.10.1063/1.2713940
  • Sakai O, Sakaguchi T, Tachibana K. Photonic bands in two-dimensional microplasma arrays. I. Theoretical derivation of band structures of electromagnetic waves. J. Appl. Phys. 2007;101:073304.10.1063/1.2713939
  • Sakai O, Sakaguchi T, Ito Y. Interaction and control of millimetre-waves with microplasma arrays. Plasma Phys. Control Fusion. 2005;47:B617.10.1088/0741-3335/47/12B/S45
  • Fan W, Dong L. Tunable one-dimensional plasma photonic crystals in dielectric barrier discharge. Phys. Plasmas. 2010;17:073506.10.1063/1.3456520
  • Dong L, Xiao H, Fan W, Zhao H, Yue H. A plasma photonic crystal with tunable lattice constant. IEEE Trans. Plasma Sci. 2010;38:2486–2490.
  • Zhang HF, Liu SB, Kong XK, Chen-Chen BR. The characteristics of photonic band gaps for three-dimensional unmagnetized dielectric plasma photonic crystals with simple-cubic lattice. Optic Commun. 2013;288:82–90.10.1016/j.optcom.2012.09.078
  • Zhang HF, Liu SB, Kong XK, Bian BR. The properties of photonic band gaps for three-dimensional plasma photonic crystals in a diamond structure. Phys. Plasmas. 2013;20:042110.10.1063/1.4801043
  • Zhang HF, Liu SB, Kong XK. Dispersion properties of three-dimensional plasma photonic crystals in diamond lattice arrangement. J. Lightwave Technol. 2013;31:1694–1702.10.1109/JLT.2013.2256879
  • Zhang HF, Liu SB, Li BX. The properties of photonic band gaps for three-dimensional tunable photonic crystals with simple-cubic lattices doped by magnetized plasma. Opt. Laser Technol. 2013;50:93–102.
  • Zhang HF, Liu SB, Kong XK. Properties of anisotropic photonic band gaps in three-dimensional plasma photonic crystals containing the uniaxial material with different lattices. Prog Electromagn Res. 2013;141:267–289.10.2528/PIER13051703
  • Zhang HF, Liu SB, Kong XK, Li BX. Investigation on the dispersion of three-dimensional non-magnetized plasma photonic crystals with face-centered-cubic lattices. Solid State Commun. 2013;162:34–42.
  • Chan CT, Zhang WY, Wang ZL, Lei XY, Zheng D, Tam WY, Sheng P. Photonic band gaps from metallo-dielectric spheres. Phys. B. 2000;279:150–154.10.1016/S0921-4526(99)00705-X
  • Aryal DP, Tsakmakidis KL, Hess O. Complete bandgap switching in photonic opals. New J. Phys. 2009;11:073011.10.1088/1367-2630/11/7/073011
  • Zhang HF. Comment on “Photonic bands in two-dimensional microplasma array. I. Theoretical derivation of band structures of electromagnetic waves” [J. Appl. Phys. 101, 073304 (2007)]. J. Appl. Phys. 2011;110:026104.10.1063/1.3605490
  • Moroz A, Sommers C. Photonic band gaps of three-dimensional face-centred cubic lattices. J. Phys. Condens. Matt. 1999;11:997–1008.
  • Noda S, Tomoda K, Yamamoto N, Chutinan A. Full three-dimensional photonic bandgap crystals at near-infrared wavelengths. Science. 2000;289:604–606.10.1126/science.289.5479.604
  • Alexeff I, Anderson T, Farshi E, Karnam N, Pulasani NR. Recent results for plasma antennas. Phys. Plasmas. 2008;15:057104.10.1063/1.2919157

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