• Frontiers of Optoelectronics
  • Vol. 12, Issue 4, 365 (2019)
Chunxiang ZENG1, Zeqing WANG1, and Yingmao XIE2、*
Author Affiliations
  • 1School of Physics and Electronic Information, Gannan Normal University, Ganzhou 341000, China
  • 2Institute of Optoelectronic Materials and Technology, Gannan Normal University, Ganzhou 341000, China
  • show less
    DOI: 10.1007/s12200-019-0870-0 Cite this Article
    Chunxiang ZENG, Zeqing WANG, Yingmao XIE. Transmission characteristics of linearly polarized light in reflection-type one-dimensional magnetophotonic crystals[J]. Frontiers of Optoelectronics, 2019, 12(4): 365 Copy Citation Text show less
    References

    [1] Vasiliev M, Alameh K E, Belotelov V I, Kotov V A, Zvezdin A K. Magnetic photonic crystals: 1-D optimization and applications for the integrated optics devices. Journal of Lightwave Technology, 2006, 24(5): 2156–2162

    [2] Wang H, Wang G, Han Y, Chen F. Polarization gaps in onedimensional magnetic photonic crystal. Optics Communications, 2014, 310: 199–203

    [3] Ghanaatshoar M, Zamani M. Magneto-optical magnetic field sensors based on compact magnetophotonic crystals. Journal of Superconductivity and Novel Magnetism, 2015, 28(4): 1365–1370

    [4] Li J, Tang T, Zhang Y, Luo L, Sun P. Magneto-plasmonic sensor with one dimensional photonic crystal for methane detection. Optik (Stuttgart), 2018, 155: 74–80

    [5] Inoue M, Fujii T. A theoretical analysis of magneto-optical Faraday effect of YIG films with random multilayer structures. Journal of Applied Physics, 1997, 81(8): 5659–5661

    [6] Sharifian M, Ghadiri H, Zamani M, Ghanaatshoar M. Influence of thickness error on the operation of adjustable magneto-optical isolators. Applied Optics, 2012, 51(20): 4873–4878

    [7] Liu J, Wang S, Deng S, Wang Y, Zhang J. Polarization research of YIG based two-dimensional magneto photonic crystals. Optics Communications, 2017, 402: 319–325

    [8] Kato H, Inoue M. Reflection-mode operation of one-dimensional magnetophotonic crystals for use in film-based magneto-optical isolator devices. Journal of Applied Physics, 2002, 91(10): 7017– 7019

    [9] hanaatshoar M, Zamani M, Alisafaee H. Compact 1-D magnetophotonic crystals with simultaneous large magnetooptical Kerr rotation and high reflectance. Optics Communications, 2011, 284 (14): 3635–3638

    [10] Zamani M, Eftekhari S, Ghanaatshoar M. Broadband flat-top spectra of transmittance and faraday rotation in 1D magnetophotonic crystals containing double-negative materials. Journal of Superconductivity and Novel Magnetism, 2015, 28(8): 2613–2619

    [11] Zamani M. All superconducting photonic crystals with wide-band flat-top responses in visible region. Journal of Superconductivity and Novel Magnetism, 2015, 28(12): 3513–3518

    [12] Berreman D W. Optics in stratified and anisotropic media: 44- matrix formulation. Journal of the Optical Society of America, 1972, 62(4): 502–510

    [13] Chen C J, Lien A, Nathan M I. 4  4 and 2  2 matrix formulations for the optics in stratified and biaxial media. Journal of the Optical Society of America A, Optics, Image Science, and Vision, 1997, 14 (11): 3125–3134

    [14] Fei H,Wu J, Yang Y, Liu X, Chen Z. Magneto-optical isolators with flat-top responses based on one-dimensional magneto-photonic crystals. Photonics and Nanostructures, 2015, 17: 15–21

    [15] Zamani M, Ghanaatshoar M. Design and error analysis of adjustable reflection-type magneto-optical photonic crystals for optical isolator application. Journal of Magnetism and Magnetic Materials, 2014, 358–359: 76–81

    [16] Abdi-Ghaleh R, Namdar A. Circular polarization bandpass filters based on one-dimensional magnetophotonic crystals. Journal of Modern Optics, 2013, 60(19): 1619–1626

    [17] Zamani M, Ghanaatshoar M. High performance reflection-type 1D magnetophotonic crystals with flat-top responses. Photonics and Nanostructures, 2013, 11(3): 234–240

    Chunxiang ZENG, Zeqing WANG, Yingmao XIE. Transmission characteristics of linearly polarized light in reflection-type one-dimensional magnetophotonic crystals[J]. Frontiers of Optoelectronics, 2019, 12(4): 365
    Download Citation