Title :
On flat-top response of a photonic crystal based optical filter designed for CWDM system
Author :
Dasgupta, Shounak ; Bose, Chayanika
Author_Institution :
ECE Dept., Swami Vivekananda Inst. of Sci. & Technol., Kolkata, India
Abstract :
In this communication, an all-optic band pass filter, having nearly squared flat top spectral characteristic, is designed using 1D photonic crystal (PhC) with defects. Estimated defects are incorporated here into the PhC structure through proper extension in dielectric layers of specific unit cells. The additional optical path offered by the defect regions introduces additional phase shifts which in turn open up transmission windows with in the band gap of the PhC. Performance of the flat top filter is analyzed using transfer matrix method. The analysis reveals that the distribution of the introduced defects controls the transmission characteristics of the structure. To achieve flat top response, the condition regarding distribution of two defects within the PhC is derived. Silicon and silicon-dioxide were chosen as material pairs for simulation. The well mature silicon technology aids the practical realization of the structure. Width of the flat top pass band is further tailored to achieve exactly the ITU-T recommended maximum full width of 14 nm at half maxima to support shifts of signal wavelength in an allotted channel for a coarse wavelength division multiplexing (CWDM) system. The proposed model for flat top response is validated for practical implementation by simulating the structure using CST MW Studio. The results using CST MW Studio show close agreement with the MATLAB simulation.
Keywords :
band-pass filters; crystal defects; dielectric materials; energy gap; optical filters; photonic crystals; silicon compounds; wavelength division multiplexing; 1D photonic crystal; CST MW Studio; CWDM system; ITU-T; MATLAB simulation; SiO2; all-optic band pass filter; allotted channel; band gap; coarse wavelength division multiplexing; crystal defects; dielectric layers; flat top pass band; flat-top response; optical filter; photonic crystal structure; signal wavelength; silicon dioxide; silicon technology; transfer matrix; Band pass filters; Filtering theory; Optical filters; Photonic band gap; Silicon; Photonic Crystal; optical flat top band pass filter; photonic band gap (PBG); transfer matrix;
Conference_Titel :
India Conference (INDICON), 2011 Annual IEEE
Conference_Location :
Hyderabad
Print_ISBN :
978-1-4577-1110-7
DOI :
10.1109/INDCON.2011.6139488