PhotonIcs and Electromagnetics Research Symposium,
also known as Progress In Electromagnetics Research Symposium
PIERS Proceedings
Published: 2015-07-09
The Dispersion Properties of Three-dimensional Magnetized Plasma Photonic Crystals as the Mixed Polarized Waves Considered
By
Proceedings of 2015 Photonics & Electromagnetics Research Symposium, Prague, July 6 - 9,Page(s)78-82
Abstract
In this paper, the dispersion properties of three-dimensional (3D) magnetized plasma photonic crystals (MPPCs) with face-centered-cubic (fcc) lattices are theoretically in- vestigated based on the modified plane wave expansion (PWE) method, in which the homo- geneous magnetized plasma spheres are immersed in the homogeneous and isotropic dielectric background, as the mixed polarized waves and magneto-optical Voigt effects are considered. The more general case has been studied, and the photonic band gap (PBG) of such MPPCs is not only for the left and right circular polarized waves but also for the mixed polarized waves. The equations for calculating the PBG for all of the electromagnetic waves in such 3D MPPCs also are theoretically deduced. Theoretical computing results show that one PBG and two flatbands regions can be observed. Compared to the conventional dielectric-air photonic crystals with sim- ilar structure, the larger PBG can be obtained in such 3D MPPCs. However, the narrower PBG can be achieved compared to the PBG for the extraordinary mode, but the larger upper edge frequency of flatbands region can be obtained.
Citation
Yu-Qing Chen, Guowen Ding, Yi-Bing Lin, and Hai Feng Zhang, "The Dispersion Properties of Three-dimensional Magnetized Plasma Photonic Crystals as the Mixed Polarized Waves Considered," Proceedings of 2015 Photonics & Electromagnetics Research Symposium, Prague, July 6 - 9,Page(s)78-82
References

1. HOJO, Hitoshi and Atsushi MASE, "Dispersion Relation of Electromagnetic Waves in One-Dimensional Plasma Photonic Crystals," Journal of Plasma and Fusion Research, Vol. 80, No. 2, 89–90, 2004.
doi:10.1585/jspf.80.89        Google Scholar

2. Ginzburg, V. L., The Propagation of Electromagnetic Wave in Plasma, Pergamon, Oxford, UK, 1970.        Google Scholar

3. Hai-Feng, Zhang, Ma Li, and Liu Shao-Bin and, "Defect mode properties of magnetized plasma photonic crystals," Acta Physica Sinica, Vol. 58, No. 2, 1071, 2009.
doi:10.7498/aps.58.1071        Google Scholar

4. Qi, L., Z. Yang, and T. Fu, "Defect modes in one-dimensional magnetized plasma photonic crystals with a dielectric defect layer," Physics of Plasmas, Vol. 19, No. 1, January 2012.
doi:10.1063/1.3677876        Google Scholar

5. Hamidi, S. M., "Optical and magneto-optical properties of one-dimensional magnetized coupled resonator plasma photonic crystals," Physics of Plasmas, Vol. 19, No. 1, January 2012.
doi:10.1063/1.3677263        Google Scholar

6. Qi, L., "Photonic band structures of two-dimensional magnetized plasma photonic crystals," Journal of Applied Physics, Vol. 111, No. 7, April 2012.
doi:10.1063/1.3699213        Google Scholar

7. Zhang, Hai-Feng, Shao-Bin Liu, Xiang-Kun Kong, Bo-Rui Bian, and Ya-Nan Guo, "Dispersion properties of two-dimensional plasma photonic crystals with periodically external magnetic field," Solid State Communications, Vol. 152, No. 14, 1221–1229, July 2012.
doi:10.1016/j.ssc.2012.04.055        Google Scholar

8. Qi, L. and X. Zhang, "Band gap characteristics of plasma with periodically varying external magnetic field," Solid State Communications, Vol. 151, No. 23, 1838–1841, December 2011.
doi:10.1016/j.ssc.2011.08.012        Google Scholar

9. Zhang, Hai-Feng, Shao-Bin Liu, Xiang-Kun Kong, Chen-Chen, and Bo-Rui Bian, "The characteristics of photonic band gaps for three-dimensional unmagnetized dielectric plasma photonic crystals with simple-cubic lattice," Optics Communications, Vol. 288, 82–90, February 2013.
doi:10.1016/j.optcom.2012.09.078        Google Scholar

10. Zhang, Hai-Feng, Shao-Bin Liu, and Xiang-Kun Kong, "Photonic band gaps in one-dimensional magnetized plasma photonic crystals with arbitrary magnetic declination," Physics of Plasmas, Vol. 19, No. 12, December 2012.
doi:10.1063/1.4766474        Google Scholar

11. Zhang, Hai-Feng, Shao-Bin Liu, Huan Yang, and Xiang-Kun Kong, "Analysis of photonic band gap in dispersive properties of tunable three-dimensional photonic crystals doped by magnetized plasma," Physics of Plasmas, Vol. 20, No. 3, March 2013.
doi:10.1063/1.4798523        Google Scholar

12. Zhang, Hai-Feng, Shao-Bin Liu, and Xiang-Kun Kong, "Dispersion Properties of Three-Dimensional Plasma Photonic Crystals in Diamond Lattice Arrangement," Journal of Lightwave Technology, Vol. 31, No. 11, 1694–1702, June 2013.
doi:10.1109/jlt.2013.2256879        Google Scholar

13. Zhang, Hai-Feng, Shao-Bin Liu, Xiang-Kun Kong, Chen-Chen, and Bo-Rui Bian, "The properties of photonic band gaps for three-dimensional plasma photonic crystals in a diamond structure," Physics of Plasmas, Vol. 20, No. 4, April 2013.
doi:10.1063/1.4801043        Google Scholar

14. Zhang, Hai-Feng, Shao-Bin Liu, and Bing-Xiang Li, "The properties of photonic band gaps for three-dimensional tunable photonic crystals with simple-cubic lattices doped by magnetized plasma,", Vol. 50, 93–102, September 2013.
doi:10.1016/j.optlastec.2013.02.011        Google Scholar

15. Zhang, Hai-Feng, Shao-Bin Liu, and Yu-Chi Jiang, "The properties of photonic band gap and surface plasmon modes in the three-dimensional magnetized photonic crystals as the mixed polarized modes considered," Cambridge University Press (CUP), Vol. 81, No. 2, December 2014.
doi:10.1017/s0022377814001238        Google Scholar