Comparative study of all-optical INVERTER and BUFFER gates using MZI structure

Author:

Singh Pallavi1,Singh Ashutosh Kumar2,Arun Vanya3,Tripathi Devendra K4

Affiliation:

1. Hindustan Institute of Technology and Science , Department of Electronics and Communication Engineering , Chennai , Tamil Nadu , India

2. Department of Electronics and Communication Engineering , F. E. T., M. J. P. Rohilkhand University , Bareilly , Uttar Pradesh , India

3. Department of Electronics and Communication Engineering , IILM-CET , Grater Noida , Uttar Pradesh , India

4. Department of Electronics and Communication Engineering , Rajkiya Engineering College , Sinbhadra , Uttar Pradesh , India

Abstract

Abstract In the paper, one input optical gates i.e., INVERTER and BUFFER have been designed using some basic assumption to analyze with the help of Semi-conductor Optical Amplifier based Mach–Zehnder Interferometer structure. The results are optimized by iterative process. The proposed design of optical gates presents low complexity, high scalability and more feasible to evaluate through digital Boolean analyzation. The digital Boolean analyzation is analyzed by some basic Boolean rules and assumptions which makes the design more digital so that it can be compatible for more than one input optical gates also. Optical Gate is designed to get constructive and destructive interference for pump and probe as they are injected into SOA simultaneously. The phase modulation is converted into intensity modulation which gives a Boolean result. The paper is optimized by Eye diagram, Q factor, wavelength spectrum and frequency chirp for both the gates. The comparative results of extinction ratio for both the gates have also been discussed. The design is supported by theoretical analysis, simulation tool (Optsim) and Boolean explanation. The proposed designs are constructed with same pattern which supports the same Boolean analysis.

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Condensed Matter Physics,Atomic and Molecular Physics, and Optics

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