DocumentCode :
1763621
Title :
Fully Integrated AND and OR Optical Logic Gates
Author :
Younis, Raghda M. ; Areed, Nihal F. F. ; Obayya, Salah S. A.
Author_Institution :
Electron. & Commun. Eng. Dept., Mansoura Univ., Mansoura, Egypt
Volume :
26
Issue :
19
fYear :
2014
fDate :
Oct.1, 1 2014
Firstpage :
1900
Lastpage :
1903
Abstract :
We propose two novel designs of compact, linear, and all-optical OR and AND logic gates based on photonic crystal architecture. The proposed devices are formed by the combination of the ring cavities and Y-shape line defect coupler placed between two waveguides. The performance of the proposed logic gates has been analyzed and investigated using finite difference time domain method. The suggested design for AND gate offers ON to OFF logic level contrast ratio of not less than 6 dB and the suggested design for OR gate offers transmitted power of not less than 0.5. On top of that, the proposed OR and AND logic gates can operate at bit rates of around 0.5 and 0.208 Tb/s, respectively. Further, the calculated fabrication tolerances of the suggested devices show that the rods radii of the ring cavities need to be controlled with no more than ±10% and ±3% fabrication errors for optical OR and AND gates, respectively. It is expected that such designs have the potential to be key components for future photonic integrated circuits due to their simplicity and small size.
Keywords :
finite difference time-domain analysis; integrated optics; optical couplers; optical design techniques; optical fabrication; optical logic; optical waveguides; photonic crystals; AND gate design; ON to OFF logic level contrast ratio; Y-shape line defect coupler; all-optical OR logic gates; bit rate 0.208 Tbit/s; bit rate 0.5 Tbit/s; compact logic gates; fabrication errors; fabrication tolerances; finite difference time domain method; fully integrated AND optical logic gates; fully integrated OR optical logic gates; linear logic gates; photonic crystal architecture; photonic integrated circuits; ring cavities; rod radii; transmitted power; waveguides; Adaptive optics; Cavity resonators; Logic gates; Nonlinear optics; Optical device fabrication; Optical waveguides; Photonic crystals; FDTD; Photonic crystals; logic gates;
fLanguage :
English
Journal_Title :
Photonics Technology Letters, IEEE
Publisher :
ieee
ISSN :
1041-1135
Type :
jour
DOI :
10.1109/LPT.2014.2340435
Filename :
6858067
Link To Document :
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