• Opto-Electronic Engineering
  • Vol. 45, Issue 11, 180239 (2018)
Zhao Yali1、2, Li Xufeng3, Jia Kun1, Ma Jiangjiang1、2, Li Qiaoyan1, and Wei Xuehong2、*
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • 3[in Chinese]
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    DOI: 10.12086/oee.2018.180239 Cite this Article
    Zhao Yali, Li Xufeng, Jia Kun, Ma Jiangjiang, Li Qiaoyan, Wei Xuehong. Optical characteristics of one dimensional metal-dielectric photonic band gap material[J]. Opto-Electronic Engineering, 2018, 45(11): 180239 Copy Citation Text show less
    References

    [1] Jena S, Tokas R B, Sarkar P, et al. Omnidirectional photonic band gap in magnetron sputtered TiO2/SiO2 one dimensional photonic crystal[J]. Thin Solid Films, 2016, 599: 138–144.

    [2] Shen H Z, Wang Z H, Wu Y X, et al. One-dimensional photonic crystals: fabrication, responsiveness and emerging applications in 3D construction[J]. RSC Advances, 2016, 6(6): 4505–4520.

    [3] Moslemi F, Jamshidi-Ghaleh K. Electrically tunable optical bistability based on one-dimensional photonic crystals with nonlinear nanocomposite materials[J]. Journal of Applied Physics, 2016, 119(9): 093101.

    [4] Xiao X, Wang W J, Li S H, et al. Investigation of defect modes with Al2O3 and TiO2 in one-dimensional photonic crystals[J]. Optik-International Journal for Light and Electron Optics, 2016, 127(1): 135–138.

    [5] Degli-Eredi I, Sipe J E, Vermeulen N. TE-polarized graphene modes sustained by photonic crystal structures[J]. Optics Letters, 2015, 40(9): 2076–2079.

    [6] Luo Z M, Chen M, Deng J Y, et al. Low-pass spatial filters with small angle-domain bandwidth based on one-dimensional metamaterial photonic crystals[J]. Optik-International Journal for Light and Electron Optics, 2016, 127(1): 259–262.

    [7] Liu Y Q, Qi X Y, Lu Y, et al. Observation of beam deflection in one-dimensional photonic lattice in LiNbO3 crystal accompanied with self-focusing and self-defocusing nonlinearities[J]. Physics Letters A, 2016, 380(1–2): 322–325.

    [8] Xiao X Y, Chen R P. Study of omnidirectional reflection bandgap extension in one-dimensional quasi-periodic metallic photonic crystal[J]. Nano, 2015, 10(6): 1550088.

    [9] Pavlichenko I, Broda E, Fukuda Y, et al. Bringing one-dimensional photonic crystals to a new light: an electrophotonic platform for chemical mass transport visualisation and cell monitoring[J]. Materials Horizons, 2015, 2(3): 299–308.

    [10] Yu W J, Jia X, Long Y B, et al. Highly efficient semitransparent polymer solar cells with color rendering index approaching 100 using one-dimensional photonic crystal[J]. ACS Applied Materials & Interfaces, 2015, 7(18): 9920–9928.

    [11] Mandal S, Bose C, Bose M K. A generalized design of one dimensional photonic crystal based optical filter with lossy materials[ J]. Optical and Quantum Electronics, 2016, 48(3): 200.

    [12] Zhao Y L, Ma F H, Li X F, et al. A transparent electromagnetic- shielding film based on one-dimensional metal–dielectric periodic structures[J]. Chinese Physics B, 2018, 27(2): 027302.

    [13] Zhao Y L, Li X F, Ma J J, et al. Low-resistant and high transmittance films based on one dimensional metal-dielectric photonic band gap material[J]. Superlattices and Microstructures, 2017, 112: 596–603.

    [14] Zhao Y L, Ma F H, Li X F, et al. A transparent electromagnetic- shielding film based on one-dimensional metal dielectric periodic structures[J]. Chinese Physics B, 2018, 27(2):027302.

    [15] Aly A H, Ryu S W, Hsu H T, et al. THz transmittance in one-dimensional superconducting nanomaterial-dielectric superlattice[ J]. Materials Chemistry and Physics, 2009, 113(1): 382–384.

    [17] Scalora M, Bloemer M J, Pethel A S, et al. Transparent, metallo- dielectric, one-dimensional, photonic band-gap structures[J]. Journal of Applied Physics, 1988, 83(5): 2377–2383.

    [18] Bloemer M J, Scalora M. Transmissive properties of Ag/MgF2 photonic band gaps[J]. Applied Physics Letters, 1988, 72(14): 1676–1678.

    [19] Ward A J, Pendry J B, Stewart W J. Photonic dispersion surfaces[ J]. Journal of Physics: Condensed Matter, 1995, 7(10): 2217–2224.

    [20] Pradhan S K, Xiao B, Skuza J R, et al. Effects of dielectric thickness on optical behavior and tunability of one-dimensional Ag/SiO2 multilayered metamaterials[J]. Optics Express, 2014, 22(10): 12486–12498.

    [21] Aly A H, Ismaeel M, Abdel-Rahman E. Comparative study of the one dimensional dielectric and metallic photonic crystals[J]. Optics and Photonics Journal, 2012, 2(2): 105–112.

    [22] Oskooi A F, Roundy D, Ibanescu M, et al. MEEP: a flexible free-software package for electromagnetic simulations by the FDTD method[J]. Computer Physics Communications, 2010, 181(3): 687–702.

    [24] Cai W S, Shalaev V. Optical Metamaterials: Fundamentals and Applications[M]. New York: Springer, 2010.

    [25] Guo Y H, Yan L S, Pan W, et al. A plasmonic splitter based on slot cavity[J]. Optics Express, 2011, 19(15): 13831–13838.

    [26] Guo Y H, Yan L S, Pan W, et al. Electromagnetically induced transparency(EIT)-like transmission in side-coupled complementary split-ring resonators[J]. Optics Express, 2012, 20(22): 24348–24355.

    [27] Wood B, Pendry J B, Tsai D P. Directed subwavelength imaging using a layered metal-dielectric system[J]. Physical Review B, 2006, 74(11): 115116.

    [28] Belov P A, Hao Y, Subwavelength imaging at optical frequencies using a transmission device formed by a periodic layered metal-dielectric structure operating in the canalization regime[J]. Physical Review B, 2006, 73(11): 113110.

    Zhao Yali, Li Xufeng, Jia Kun, Ma Jiangjiang, Li Qiaoyan, Wei Xuehong. Optical characteristics of one dimensional metal-dielectric photonic band gap material[J]. Opto-Electronic Engineering, 2018, 45(11): 180239
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