Research Article

Designing and Implementation of Quantum Cellular Automata 2:1 Multiplexer Circuit

by  Debarka Mukhopadhyay, Sourav Dinda, Paramartha Dutta
journal cover
International Journal of Computer Applications
Foundation of Computer Science (FCS), NY, USA
Volume 25 - Issue 1
Published: July 2011
Authors: Debarka Mukhopadhyay, Sourav Dinda, Paramartha Dutta
10.5120/2996-4026
PDF

Debarka Mukhopadhyay, Sourav Dinda, Paramartha Dutta . Designing and Implementation of Quantum Cellular Automata 2:1 Multiplexer Circuit. International Journal of Computer Applications. 25, 1 (July 2011), 21-24. DOI=10.5120/2996-4026

                        @article{ 10.5120/2996-4026,
                        author  = { Debarka Mukhopadhyay,Sourav Dinda,Paramartha Dutta },
                        title   = { Designing and Implementation of Quantum Cellular Automata 2:1 Multiplexer Circuit },
                        journal = { International Journal of Computer Applications },
                        year    = { 2011 },
                        volume  = { 25 },
                        number  = { 1 },
                        pages   = { 21-24 },
                        doi     = { 10.5120/2996-4026 },
                        publisher = { Foundation of Computer Science (FCS), NY, USA }
                        }
                        %0 Journal Article
                        %D 2011
                        %A Debarka Mukhopadhyay
                        %A Sourav Dinda
                        %A Paramartha Dutta
                        %T Designing and Implementation of Quantum Cellular Automata 2:1 Multiplexer Circuit%T 
                        %J International Journal of Computer Applications
                        %V 25
                        %N 1
                        %P 21-24
                        %R 10.5120/2996-4026
                        %I Foundation of Computer Science (FCS), NY, USA
Abstract

Quantum Cellular Automata is a promising nanotechnology that has been recognized as one of the top six emerging technology in future computers. We have developed a new methodology in design QCA 2:1 MUX having better area efficiency and less input to output delay. We have also shown that using this QCA 2:1 MUX as a unit higher MUX can also be designed. We verified the proposed design using simulation from QCADesigner tool. This simulator is also useful for building complex QCA circuits.

References
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  • R. Farazkish, M.R. Azghadi, K. Navi, M. Haghparast, New method for decreasing the number of quantum dot cells in QCA circuits, World Applied Sciences Journal 6 (2008) 793–802.
  • T. Oya, T. Asai, T. Fukui, Y. Amemiya, A majority-logic device using an irreversible single-electron box, IEEE Transactions on Nanotechnology 2 (2003).
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Index Terms
Computer Science
Information Sciences
No index terms available.
Keywords

Majority voter Circuit QCADesigner QCA Cell QCA 4:1 MUX Emerging Technology

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