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Design and Performance Analysis of MZI Based 2×2 Reversible XNOR Logic Gate

  • Kamal K. Upadhyay EMAIL logo , Saumya Srivastava , Nikhlesh K. Mishra and N. K. Shukla
Published/Copyright: March 1, 2018
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Abstract

In this article, first the model of 2×2 reversible logic gate is proposed after then the performance of the proposed designed is evaluated. With the increasing flow of information, data rate is increasing very rapidly. This has resulted in increased amount of heat dissipation from the processing nodes. Generally, electronic processors dissipate heat if the data rate is very high. Hence, this model will be very helpful for solving this problem. Evaluated performance of this model is based on the value of quality factor and extinction ratio. The quality factor and extinction ratio are evaluated under different conditions. The average extinction ratio of the design is 19.58 dB and the average quality factor is 53.03 dB. The optical cost of the proposed circuit is 1.

References

1. Landauer R. Irreversibility and heat generation in computing process. IBM J Res Dev. 1961;5:183–91.10.1147/rd.53.0183Search in Google Scholar

2. Singh S, Lovkesh. Ultrahigh speed optical signal processing logic based on SOA-MZI. Quantum Electron. 2012;18:970–77.10.1109/JSTQE.2011.2155623Search in Google Scholar

3. Paustie AJ, Blow KJ. Demonstration of an all optical Fredking gate. Opt Commun. 2000;174:317–20.10.1016/S0030-4018(99)00722-1Search in Google Scholar

4. Forsati R, Ebrahimi SV, Navi K, Jashnsaz H. Implementation of all optical reversible logic gate based on holographic laser induced grating using AZO-Dye doped polymer. Opt Laser Techol. 2013;45:565–70.10.1016/j.optlastec.2012.05.031Search in Google Scholar

5. Mandal D, Mandal S, Garai SK. Alternative approach of developing all optical Fredking anf Toffoli gate. Opt Laser Techol. 2015;72:33–41.10.1016/j.optlastec.2015.03.010Search in Google Scholar

6. Garai SK. A novel method of developing all optical frequency encoded Fredking gate. Opt Commun. 2014;313:441–47.10.1016/j.optcom.2013.10.008Search in Google Scholar

7. Taraphdal C, Chattopadhyay T, ROY JN. Machzehnder interferometer based all optical logic gate. Opt Laser Technol. 2010;42:249–59.10.1016/j.optlastec.2009.06.017Search in Google Scholar

8. Arun V, Singh AK , Shukla NK, Tripathi DK. Design and performance of SOA MZI based reversible Toffoli and irreversible AND logic gates in a single photonic circuit. Opt Quant Electron. 2016;48:445.10.1007/s11082-016-0711-ySearch in Google Scholar

9. Singh P, Tripathi DK, Jaiswal S, Dixit HK. Design of all optical buffer and OR gate using SOA-MZI. Opt Quant Electron. 2014;46:1435–44.10.1007/s11082-013-9856-0Search in Google Scholar

10. Singh P, Dixit HK, Tripathi DK, Mehra R. Design and analysis of all optical inverter using SOA based Machzehnder interferometer. Optik. 2013;124:1926–29.10.1016/j.ijleo.2012.05.038Search in Google Scholar

Received: 2017-10-31
Accepted: 2018-02-06
Published Online: 2018-03-01
Published in Print: 2020-04-28

© 2020 Walter de Gruyter GmbH, Berlin/Boston

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