92
Views
42
CrossRef citations to date
0
Altmetric
Articles

A 4-Channel Demultiplexer Based on 2D Photonic Crystal Using Line Defect Resonant Cavity

, &

REFERENCES

  • E. Yablonovitch, “Inhibited spontaneous emission in solid-state physics and electronics,” Phys. Rev. Lett., Vol. 58, no. 20, pp. 2059, May 1987.
  • S. John, “Strong localization of photons in certain disordered dielectric superlattices,” Phys. Rev. Lett., Vol. 58, no. 23, pp. 2486–9, Jun. 1987.
  • M. A. Mansouri-Birjandi, M. K. Moravej-Farshi, and A. Rostami, “Ultra low-threshold all-optical switch implement by arrays of ring resonators coupled to a Mach-Zehnder interferometer arm: based on 2D photonic crystals,” Appl. Opt., Vol. 47, no. 28, pp. 5041–50, Sep. 2008.
  • J. D. Joannopoulas, R.D. Mead, and J.N Winn, Photonic Crystals: Modeling the Flow of Light. Princeton, NJ: Princeton University, 1995.
  • P. Jiang, C. Ding, X. Hu, and Q. Gong, “Tunable double-channel filter based on two-dimensional ferroelectric photonic crystals,” Phys. Lett. A, Vol. 363, no. 4, pp. 332–6, Apr. 2007.
  • X. Hu, Z. Liu, and Q. Gong, “Tunable multichannel filter in photonic crystal heterostructure containing permeability-negative materials,” Phys. Lett. A, Vol. 372, no. 3, pp. 333–9, Jan. 2008.
  • X. Chen, Z. Qiang, D. Zhao, Y. Wang, H. Li, Y. Qiu, and W. Zhou, “Polarization beam splitter based on photonic crystal self-collimation Mach–Zehnder interferometer,” Opt. Commun., Vol. 284, no. 1, pp. 490–3, Jan. 2011.
  • M. Noori, M. Soroosh, and H. Baghban, “An approach to achieve all-angle, polarization-insensitive and broad-band self-collimation in 2D square-lattice photonic crystals,” Ukr. J. Phys. Opt., Vol. 16, no. 2, pp. 85–94, 2015.
  • M. R. Rakhshani and M. A. Mansouri-Birjandi, “Heterostructure four channel wavelength demultiplexer using square photonic crystals ring resonators,” J. Electromagnet. Waves Appl., Vol. 26, no. 13, pp. 1700–7, Aug. 2012.
  • A. E. Akosman, M. Mutlu, H. Kurt, and E. Ozbay, “Compact wavelength de-multiplexer design using slow light regime of photonic crystal waveguides,” Opt. Express, Vol. 19, no. 24, pp. 24129–38, 2011.
  • X. Zhang, Q. Liao, T. Yu, N. Liu, and Y. Huang, “Novel ultra-compact wavelength division demultiplexer based on photonic band gap,” Opt. Commun., Vol. 285, no. 3, pp. 274–6, Feb. 2012.
  • A. Rostami, H. Alipour Banaei, F. Nazari, and A. Bahrami, “An ultra-compact photonic crystal wavelength division demultiplexer using resonance cavities in a modified Y-branch structure,” Optik, Vol. 122, no. 16, pp. 1481–5, Aug. 2011.
  • A. Banaei, F. Mehdizadeh, and M. Hassangholizadeh-Kashtiban, “A novel proposal for all optical PhC-based demultiplexers suitable for DWDM applications,” Opt. Quant. Electron., Vol. 45, no. 10, pp. 1063–75, Oct. 2013.
  • L. Jiu-Sheng, L. Han, and Z. Le, “Compact four-channel terahertz demultiplexer based on directional coupling photonic crystal,” Opt. Commun., Vol. 350, pp. 248–51, Sep. 2015.
  • R. Selim, D. Pinto, and S. S. A. Obayya, “Novel fast photonic crystal multiplexer-demultiplexer switches,” Opt. Quant. Electron., Vol. 42, no. 8, pp. 425–33, Jul. 2011.
  • M. Djavid, F. Monifi, A. Ghafari, and M. S. Abrishamian, “Hetrostructure wavelength division demultiplexers using photonic crystal ring resonators,” Opt. Commun., Vol. 281, no. 15–16, pp. 4028–32, Aug. 2008.
  • L. Qing-Hua, F. Hong-Ming, C. Shu-Wen, W. Tong-Biao, Y. Tian-Bao, and H. Yong-Zhen, “The design of large separating angle ultracompact wavelength division demultiplexer based on photonic crystal ring resonators,” Opt. Commun., Vol. 331, pp. 160–4, Nov. 2014.
  • R. Talebzadeh and M. Soroosh, “High quality complete coupling 4-channel demultiplexer based on photonic crystal ring resonators,” Optoelectron. Adv. Mater., Vol. 9, no. 1–2, pp. 5–9, 2015.
  • A. Rostami, F. Nazari, H. Alipour Banaei, and A. Bahrami, “A novel proposal for DWDM demultiplexer design using modified-T photonic crystal structure,” Photon. Nanostruct. Fundamental Appl., Vol. 8, no. 1, pp. 14–22, Jan. 2010.
  • L. Li, G. Q. Liu, and H. D. Lu, “A Y-branch demultiplexer based on Kagomé lattice photonic crystals,” Optik, Vol. 124, no. 17, pp. 2913–15, 2013.
  • A. Pashaei, A. Andalib, and H. Alipour Banaei, “Decrease of crosstalk phenomenon optic two-channel demultiplexer using resonant line defect cavity in 2D photonic crystal,” J. Telecommun. Devices, Vol. 3, no. 1, pp. 35–40, Mar. 2014.
  • S. G. Johnson and J.D. Joannopoulos, “Block-iterative frequency-domain methods for Maxwell's equations in a planewave basis,” Opt. Express, Vol. 8, no. 3, pp. 173–190, 2001.
  • M. G. Can, B. B. Öner, and H. Kurt, “Polarization-independent photonic crystal Fabry–Perot cavity,” IEEE Photon. Technol. Lett., Vol. 27, no. 2, pp. 113–6, Sep. 2014.
  • M. S. Ferreira, J. Bierlich, H. Lehmann, K. Schuster, J. Kobelke, J. L. Santos, and O. Frazao, “Fabry–Pérot cavity based on hollow–core ring photonic crystal fiber for pressure sensing,” IEEE Photon. Technol. Lett., Vol. 24, no. 23, pp. 2122–4, Oct. 2012.
  • D. Zhao, H. Yang, S. Chuwongin, J. H. Seo, Z. Ma, and W. Zhou, “Design of photonic crystal membrane-reflector-based VCSELs,” IEEE Photon. J., Vol. 4, no. 6, pp. 2169–75, Dec. 2012.
  • M. M. Beaky, J. B. Burk, H. O. Everitt, M. A. Haider, and S. Venakides, “Two-dimensional photonic crystal Fabry-Perot resonators with lossy dielectrics,” IEEE Trans. Microwave Theory Tech., Vol. 47, no. 11, pp. 2085–91, Nov. 1999.
  • S. Mahnkopf, H. Hsin, G.-H. Duan, F. Lelarge, T.D. Happ, M. Kamp, R. März, and A. Forchel, “Wavelength switching by mode interference between longitudinally coupled photonic crystal channel waveguides,” Electron. Lett., Vol. 40, no. 1, pp. 29–30, Jan. 2004.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.