Abstract
In this article we designed an optical filter based on 1D photonic crystals. Then optimized the proposed structure using genetic algorithm. The proposed filter was designed using generalized Thue–Morse series. After optimizing the proposed structure, we can improve the quality factor of the proposed structure.
References
1. Alipour-Banaei H, Hassangholizadeh-Kashtiban M, Mehdizadeh F. WDM and DWDM optical filter based on 2D photonic crystal Thue–Morse structure. Opt Int J Light Electron Opt 2013;124:4416–4420.10.1016/j.ijleo.2013.03.027Search in Google Scholar
2. Wang Y, Chen D, Zhang G, Wang J, Tao S. A super narrow band filter based on silicon 2D photonic crystal resonator and reflectors. Opt Commun 2016;363:13–20.10.1016/j.optcom.2015.10.070Search in Google Scholar
3. Li L, Liu GQ. Photonic crystal ring resonator channel drop filter. Opt Int J Light Electron Opt 2013;124:2966–2968.10.1016/j.ijleo.2012.09.012Search in Google Scholar
4. Djavid M, Ghaffari A, Monifi F, Abrishamian MS. T-shaped channel-drop filters using photonic crystal ring resonators. Phys E Low-Dimensional Syst Nanostruct 2008;40:3151–3154.10.1016/j.physe.2008.05.002Search in Google Scholar
5. Youcef Mahmoud M, Bassou G, Taalbi A, Chekroun ZM. Optical channel drop filters based on photonic crystal ring resonators. Opt Commun 2012;285:368–372.10.1016/j.optcom.2011.09.068Search in Google Scholar
6. Alipour-Banaei H, Jahanara M, Mehdizadeh F. T-shaped channel drop filter based on photonic crystal ring resonator. Opt Int J Light Electron Opt 2014;125:5348–5351.10.1016/j.ijleo.2014.06.056Search in Google Scholar
7. Roshan Entezar S. Photonic crystal wedge as a tunable multichannel filter. Superlattices Microstruct 2015;82:33–39.10.1016/j.spmi.2015.01.039Search in Google Scholar
8. Zavvari M, Mehdizadeh F. Photonic crystal cavity with L3-defect for resonant optical filtering. Frequenz 2014;68:519–523.10.1515/freq-2014-0069Search in Google Scholar
9. Naoum R, Bouamami S. Temperature effect on the tenability of an eight-channel demultiplexer. Optik (Stuttg) 2014;125:5164–5166.10.1016/j.ijleo.2014.06.009Search in Google Scholar
10. Jiu-Sheng L, Han L, Le Z. Compact four-channel terahertz demultiplexer based on directional coupling photonic crystal. Opt Commun 2015;350:248–251.10.1016/j.optcom.2015.04.034Search in Google Scholar
11. Mehdizadeh F, Soroosh M, Alipour-Banaei H. An optical demultiplexer based on photonic crystal ring resonators. Opt Int J Light Electron Opt 2016;127:8706–8709.10.1016/j.ijleo.2016.06.086Search in Google Scholar
12. Zhang X, Liao Q, Yu T, Liu N, Huang Y. Novel ultracompact wavelength division demultiplexer based on photonic band gap. Opt Commun 2012;285:274–276.10.1016/j.optcom.2011.10.001Search in Google Scholar
13. Talebzadeh R, Soroosh M, Mehdizadeh F. Improved low channel spacing high quality factor four-channel demultiplexer based on photonic crystal ring resonators. Opt Appl 2016;46:553–564.Search in Google Scholar
14. Alipour-Banaei H, Mehdizadeh F, Hassangholizadeh-Kashtiban M. A novel proposal for all optical PhC-based demultiplexers suitable for DWDM applications. Opt Quantum Electron 2013;45:1063–1075.10.1007/s11082-013-9717-xSearch in Google Scholar
15. Djavid M, Monifi F, Ghaffari A, Abrishamian MS. Heterostructure wavelength division demultiplexers using photonic crystal ring resonators. Opt Commun 2008;281:4028–4032.10.1016/j.optcom.2008.04.045Search in Google Scholar
16. Alipour-Banaei H, Serajmohammadi S, Mehdizadeh F. Optical wavelength demultiplexer based on photonic crystal ring resonators. Photonic Netw Commun 2014;29:146–150.10.1007/s11107-014-0483-xSearch in Google Scholar
17. Mehdizadeh F, Soroosh M. A new proposal for eight-channel optical demultiplexer based on photonic crystal resonant cavities. Photonic Netw Commun 2016;31:65–70.10.1007/s11107-015-0531-1Search in Google Scholar
18. Alipour-Banaei H, Mehdizadeh F, Serajmohammadi S. A novel 4-channel demultiplexer based on photonic crystal ring resonators. Opt Int J Light Electron Opt 2013;124:5964–5967.10.1016/j.ijleo.2013.04.117Search in Google Scholar
19. Bernier D, Le Roux X, Lupu A, Marris-Morini D, Vivien L, Cassan E. Compact, low cross-talk CWDM demultiplexer using photonic crystal superprism. Opt Express 2008;16:17209.10.1364/OE.16.017209Search in Google Scholar PubMed
20. Li Q, Zhang A, Hua X. Numerical simulation of solitons switching and propagating in asymmetric directional couplers. Opt Commun 2012;285:118–123.10.1016/j.optcom.2011.09.003Search in Google Scholar
21. Teo HG, Liu AQ, Singh J, Yu MB, Bourouina T. Design and simulation of MEMS optical switch using photonic bandgap crystal. Microsyst Technol 2004;10:400–406.10.1007/s00542-004-0416-1Search in Google Scholar
22. Serajmohammadi S, Alipour-Banaei H, Mehdizadeh F. All optical decoder switch based on photonic crystal ring resonators. Opt Quantum Electron 2014;47:1109–1115.10.1007/s11082-014-9967-2Search in Google Scholar
23. Mehdizadeh F, Soroosh M, Alipour-Banaei H. A novel proposal for optical decoder switch based on photonic crystal ring resonators. Opt Quantum Electron 2015;48:20.10.1007/s11082-015-0313-0Search in Google Scholar
24. Medhekar S, Paltani PP. All optical switching and tunable wavelength filtering in grating assisted. Nonlinear Opt Quantum Opt 2007;36:81–90.Search in Google Scholar
25. Camargo EA, Chong HMH, La Rue RMD. 2D Photonic crystal thermo-optic switch based on AlGaAs/GaAs epitaxial structure. Opt Express 2004;12:588–592.10.1364/OPEX.12.000588Search in Google Scholar
26. Alipour-Banaei H, Mehdizadeh F, Serajmohammadi S, Hassangholizadeh-Kashtiban M. A 2*4 all optical decoder switch based on photonic crystal ring resonators. J Mod Opt 2014;62:430–434.10.1080/09500340.2014.957743Search in Google Scholar
27. Zhang Y, Zhang Y, Li B. Optical switches and logic gates based on self-collimated beams in two-dimensional photonic crystals. Opt Express 2007;15:9287.10.1364/OE.15.009287Search in Google Scholar PubMed
28. Notomi M, Shinya A, Mitsugi S, Kira G, Kuramochi E, Tanabe T. Optical bistable switching action of Si high-Q photonic-crystal nanocavities. Opt Express 2005;13:2678.10.1364/OPEX.13.002678Search in Google Scholar
29. Mehdizadeh F, Alipour-Banaei H, Serajmohammadi S. Study the role of non-linear resonant cavities in photonic crystal-based decoder switches. J Mod Opt 2017;64:1233–1239.10.1080/09500340.2016.1275854Search in Google Scholar
30. Salmanpour A, Mohammadnejad S, Bahrami A. Photonic crystal logic gates: An overview. Opt Quantum Electron 2015;47:2249–2275.10.1007/s11082-014-0102-1Search in Google Scholar
31. Bao J, Xiao J, Fan L, Li X, Hai Y, Zhang T et al. Design of all-optical logic gates avoiding external phase shifters in a two-dimensional photonic crystal based on multi-mode interference for BPSK signals. Opt Commun 2014;377:148–155.Search in Google Scholar
32. Singh BR, Rawal S. Photonic-crystal-based all-optical NOT logic gate. J Opt Soc Am 2015;32:2260.10.1364/JOSAA.32.002260Search in Google Scholar PubMed
33. Wu K-S, Dong J-W, Chen D-H, Luo X-N, Wang H-Z. Sensitive photonic crystal phase logic gates. J Mod Opt 2009;56:1895–1898.10.1080/09500340903402499Search in Google Scholar
34. Goudarzi K, Mir A, Chaharmahali I, Goudarzi D. All-optical XOR and or logic gates based on line and point defects in 2-D photonic crystal. Opt Laser Technol 2016;78:139–142.10.1016/j.optlastec.2015.10.013Search in Google Scholar
35. Alipour-Banaei H, Serajmohammadi S, Mehdizadeh F. All optical NAND gate based on nonlinear photonic crystal ring resonators. Opt Int J Light Electron Opt 2017;130:1214–1221.10.1016/j.ijleo.2016.11.190Search in Google Scholar
36. Mehdizadeh F, Soroosh M. Designing of all optical NOR gate based on photonic crystal. Indian J Pure Appl Phys 2016;54:35–39.Search in Google Scholar
37. Alipour-Banaei H, Serajmohammadi S, Mehdizadeh F. All optical NOR and NAND gate based on nonlinear photonic crystal ring resonators. Opt Int J Light Electron Opt 2014;125:5701–5704.10.1016/j.ijleo.2014.06.013Search in Google Scholar
38. Husko C, Vo TD, Corcoran B, Li J, Krauss TF, Eggleton BJ. Ultracompact all-optical XOR logic gate in a slow-light silicon photonic crystal waveguide. 2011 Int Quantum Electron Conf IQEC 2011 Conf Lasers Electro-Optics CLEO Pacific Rim 2011 Inc Australas Conf Opt Lasers Spectrosc Aust Conf 2011;19:158–159. DOI:10.1109/IQEC-CLEO0.2011.6193691.Search in Google Scholar
39. Alipour-Banaei H, Rabati MG, Abdollahzadeh-Badelbou P, Mehdizadeh F. Application of self-collimated beams to realization of all optical photonic crystal encoder. Phys E Low-Dimensional Syst Nanostruct 2016;75:77–85.10.1016/j.physe.2015.08.011Search in Google Scholar
40. Alipour-Banaei H. Proposal for 4-to-2 optical encoder based on photonic crystals. IET Optoelectron 2017;11(6):29–35.10.1049/iet-opt.2016.0022Search in Google Scholar
41. Moniem TA. All-optical digital 4×2 encoder based on 2D photonic crystal ring resonators. J Mod Opt 2015:1–7. DOI:10.1080/09500340.2015.1094580.Search in Google Scholar
42. Ouahab I, Rafah N A novel all optical 4×2 encoder switch based on photonic crystal ring resonators. Opt Int J Light Electron Opt 2016. DOI:10.1016/j.ijleo0.2016.05.080.Search in Google Scholar
43. Hassangholizadeh-Kashtiban M, Sabbaghi-Nadooshan R, Alipour-Banaei H. A novel all optical reversible 4×2 encoder based on photonic crystals. Opt Int J Light Electron Opt 2015;126:2368–2372.10.1016/j.ijleo.2015.05.140Search in Google Scholar
44. Alipour-Banaei H, Rabati MG, Abdollahzadeh-Badelbou P, Mehdizadeh F. Effect of self-collimated beams on the operation of photonic crystal decoders. J Electromagn Waves Appl 2016;30:1440–1448.10.1080/09205071.2016.1202785Search in Google Scholar
45. Xu C, Liu X. Photonic analog-to-digital converter using soliton self-frequency shift and interleaving spectral filters. Opt Lett 2003;28:986–988.10.1364/OL.28.000986Search in Google Scholar PubMed
46. Mehdizadeh F, Soroosh M, Alipour-Banaei H, Farshidi E. A novel proposal for all optical analog-to-digital converter based on photonic crystal structures. IEEE Photonics J 2017;9:1–11.10.1109/JPHOT.2017.2690362Search in Google Scholar
47. Fasihi K. All-optical analog-to-digital converters based on cascaded 3-dB power splitters in 2D photonic crystals. Opt Int J Light Electron Opt 2014;125:6520–6523.10.1016/j.ijleo.2014.08.030Search in Google Scholar
48. Youssefi B, Moravvej-Farshi MK, Granpayeh N. Two bit all-optical analog-to-digital converter based on nonlinear Kerr effect in 2D photonic crystals. Opt Commun 2012;285:3228–3233.10.1016/j.optcom.2012.02.081Search in Google Scholar
49. Mehdizadeh F, Soroosh M, Alipour-Banaei H, Farshidi E. Ultra-fast analog-to-digital converter based on a nonlinear triplexer and an optical coder with a photonic crystal structure. Appl Opt 2017;56:1799–1806.10.1364/AO.56.001799Search in Google Scholar PubMed
50. Mehdizadeh F, Soroosh M, Alipour-Banaei H, Farshidi E. All optical 2-bit analog to digital converter using photonic crystal based cavities. Opt Quantum Electron 2017;49:38.10.1007/s11082-016-0880-8Search in Google Scholar
51. Sahel S, Amri R, Bouaziz L, Gamra D, Lejeune M, Benlahsen M et al. Optical filters using Cantor quasi-periodic one dimensional photonic crystal based on Si/SiO2. Superlattices Microstruct 2016;97:429–438.10.1016/j.spmi.2016.07.007Search in Google Scholar
52. Alipour-Banaei H, Mehdizadeh F. Significant role of photonic crystal resonant cavities in WDM and DWDM communication tunable filters. Opt Int J Light Electron Opt 2013;124:2639–2644.10.1016/j.ijleo.2012.07.029Search in Google Scholar
53. Alipour-Banaei H, Mehdizadeh F. High sensitive photonic crystal ring resonator structure applicable for optical integrated circuits. Photonic Netw Commun 2017;33:152–158.10.1007/s11107-016-0625-4Search in Google Scholar
© 2020 Walter de Gruyter GmbH, Berlin/Boston
Articles in the same Issue
- Frontmatter
- Amplifiers
- Engineering Flat Gain Tunable Raman-Parametric Hybrid L-Band Amplifier for Narrow Band Multi-Channel Terabits System
- Performance Evaluation of Different Optical Amplifiers in Spectrum Sliced Free Space Optical Link
- Performance Evaluation of Optical Amplifiers for High-Speed Optical Networks
- Performance Analysis of Hybrid Optical Amplifiers for 32 Channel WDM System at 10 Gbps Bit Rate for WAN Applications
- Detectors
- Performance Evaluation of System in Free Space Optic Utilizing Gaussian Optical Filter in Different Detection Scheme
- Devices
- An Optical Five Channel Demultiplexer-Based Simple Photonic Crystal Ring Resonator for WDM Applications
- Performance Analysis of Localized Surface Plasmon Resonance Sensor with and Without Bragg Grating
- Design of All Optical XOR Gate based on Photonic Crystal Ring Resonator
- Fibers
- Characteristics of Dispersion Compensation for 32 Channels at 40 Gb/s Under Different Techniques
- Prediction of Fundamental Modal Field for Graded Index Fiber in the Presence of Kerr Nonlinearity
- Networks
- A Cross-layer Traffic Grooming Algorithm in Joint Optimization of the IP over Elastic Optical Network
- Performance Improvement of WDM Optical Network using Optimal Regenerator Placement Strategy
- Systems
- Performance Analysis of Hybrid Fiber/FSO Backhaul Downlink over WDM-PON Impaired by Four-Wave Mixing
- Transporting 8 × 10 Gbps WDM Ro-FSO Under Various Weather Conditions
- Theory
- Using Genetic Algorithm for Optimizing 1D Thue–Morse Photonic Crystal-Based Filter
Articles in the same Issue
- Frontmatter
- Amplifiers
- Engineering Flat Gain Tunable Raman-Parametric Hybrid L-Band Amplifier for Narrow Band Multi-Channel Terabits System
- Performance Evaluation of Different Optical Amplifiers in Spectrum Sliced Free Space Optical Link
- Performance Evaluation of Optical Amplifiers for High-Speed Optical Networks
- Performance Analysis of Hybrid Optical Amplifiers for 32 Channel WDM System at 10 Gbps Bit Rate for WAN Applications
- Detectors
- Performance Evaluation of System in Free Space Optic Utilizing Gaussian Optical Filter in Different Detection Scheme
- Devices
- An Optical Five Channel Demultiplexer-Based Simple Photonic Crystal Ring Resonator for WDM Applications
- Performance Analysis of Localized Surface Plasmon Resonance Sensor with and Without Bragg Grating
- Design of All Optical XOR Gate based on Photonic Crystal Ring Resonator
- Fibers
- Characteristics of Dispersion Compensation for 32 Channels at 40 Gb/s Under Different Techniques
- Prediction of Fundamental Modal Field for Graded Index Fiber in the Presence of Kerr Nonlinearity
- Networks
- A Cross-layer Traffic Grooming Algorithm in Joint Optimization of the IP over Elastic Optical Network
- Performance Improvement of WDM Optical Network using Optimal Regenerator Placement Strategy
- Systems
- Performance Analysis of Hybrid Fiber/FSO Backhaul Downlink over WDM-PON Impaired by Four-Wave Mixing
- Transporting 8 × 10 Gbps WDM Ro-FSO Under Various Weather Conditions
- Theory
- Using Genetic Algorithm for Optimizing 1D Thue–Morse Photonic Crystal-Based Filter