We apologize for a recent technical issue with our email system, which temporarily affected account activations. Accounts have now been activated. Authors may proceed with paper submissions. PhDFocusTM
CFP last date
20 December 2024
Reseach Article

Implementation of Reversible Logic Gate in Quantum Dot Cellular Automata

by Rubina Akter, Nazrul Islam, Sajjad Waheed
International Journal of Computer Applications
Foundation of Computer Science (FCS), NY, USA
Volume 109 - Number 1
Year of Publication: 2015
Authors: Rubina Akter, Nazrul Islam, Sajjad Waheed
10.5120/19155-0591

Rubina Akter, Nazrul Islam, Sajjad Waheed . Implementation of Reversible Logic Gate in Quantum Dot Cellular Automata. International Journal of Computer Applications. 109, 1 ( January 2015), 41-44. DOI=10.5120/19155-0591

@article{ 10.5120/19155-0591,
author = { Rubina Akter, Nazrul Islam, Sajjad Waheed },
title = { Implementation of Reversible Logic Gate in Quantum Dot Cellular Automata },
journal = { International Journal of Computer Applications },
issue_date = { January 2015 },
volume = { 109 },
number = { 1 },
month = { January },
year = { 2015 },
issn = { 0975-8887 },
pages = { 41-44 },
numpages = {9},
url = { https://ijcaonline.org/archives/volume109/number1/19155-0591/ },
doi = { 10.5120/19155-0591 },
publisher = {Foundation of Computer Science (FCS), NY, USA},
address = {New York, USA}
}
%0 Journal Article
%1 2024-02-06T22:43:42.025888+05:30
%A Rubina Akter
%A Nazrul Islam
%A Sajjad Waheed
%T Implementation of Reversible Logic Gate in Quantum Dot Cellular Automata
%J International Journal of Computer Applications
%@ 0975-8887
%V 109
%N 1
%P 41-44
%D 2015
%I Foundation of Computer Science (FCS), NY, USA
Abstract

Quantum Dot Cellular Automata (QCA) is a nanotechnology with many attractive features such as higher speed, smaller size, higher switching frequency, higher scale integration and low power consumption. There are many researches have been reported on the design of reversible logic gates compared to the reversible TR. This paper proposes a modified design of the reversible Feynman gate and also propose reversible TR gate, then design 1-bit comparator using reversible TR gates and Feynman Gate. The result shows an efficient technique to design Feynman gate and one bit comparator. The proposed gates can be easily used to design complex circuits which are used in the Central Processing Unit (CPU) and microcontrollers.

References
  1. Cho, H. , & Swartzlander, E. E. (2009). Adder and multiplier design in quantum-dot cellular automata. IEEE Transactions on Computers, 58(6), 721-727.
  2. Zhang, R. , Walus, K. , Wang, W. , & Jullien, G. A. (2004). A method of majority logic reduction for quantum cellular automata. IEEE Transactions on Nanotechnology, 3(4), 443-450.
  3. Hänninen, I. , & Takala, J. (2010). Binary adders on quantum-dot cellular automata. Journal of Signal Processing Systems, 58(1), 87-103.
  4. Kummamuru, R. K. , Orlov, A. O. , Ramasubramaniam, R. , Lent, C. S. , Bernstein, G. H. , & Snider, G. L. (2003). Operation of a quantum-dot cellular automata (QCA) shift register and analysis of errors. IEEE Transactions on Electron Devices, 50(9), 1906-1913.
  5. Walus, K. , Jullien, G. A. , & Dimitrov, V. S. (2003, November). Computer arithmetic structures for quantum cellular automata. In Conference on Record of the Thirty-Seventh Asilomar, Signals, Systems and Computers, 2004. (Vol. 2, pp. 1435-1439). IEEE.
  6. Walus, K. , Dysart, T. J. , Jullien, G. A. , & Budiman, R. A. (2004). QCADesigner: A rapid design and simulation tool for quantum-dot cellular automata. Transactions on Nanotechnology, IEEE 3(1), 26-31.
  7. Lent, C. S. , & Tougaw, P. D. (1993). Lines of interacting quantum?dot cells: A binary wire. Journal of Applied Physics, 74(10), 6227-6233.
  8. Tougaw, P. D. , & Lent, C. S. (1994). Logical devices implemented using quantum cellular automata. Journal of Applied physics, 75(3), 1818-1825.
  9. Ahmad, F. , Bhat, G. M. , & Ahmad, P. Z. (2014). Novel Adder Circuits Based On Quantum-Dot Cellular Automata (QCA). Circuits and Systems, 2014.
  10. Garipelly, R. , Kiran, P. M. , & Kumar, A. S. (2013). A Review on Reversible Logic Gates and their Implementation. International Journal of Emerging Technology and Advanced Engineering, Volume 3.
  11. Haghparast, M. , Jassbi, S. J. , Navi, K. , & Hashemipour, O. (2008). Design of a novel reversible multiplier circuit using HNG gate in nanotechnology. In World Appl. Sci. J.
  12. Thapliyal, H. , & Srinivas, M. B. (2006). Novel reversible multiplier architecture using reversible TSG gate. arXiv preprint cs/0605004.
  13. Bruce, J. W. , Thornton, M. A. , Shivakumaraiah, L. , Kokate, P. S. , & Li, X. (2002). Efficient adder circuits based on a conservative reversible logic gate. InVLSI, 2002. Proceedings. Annual Symposium on IEEE Computer Society Annual Symposium on (pp. 74-79). IEEE.
  14. "QCADesigner" http://www. mina. ubc. ca/qcadesigner [Online; Accessed: 29-July-2014].
  15. Rahman, M. A. , Khatun, F. , Sarkar, A. , & Huq, M. F. (2013). Design and Implementation of Feynman Gate in Quantum-dot Cellular Automata (QCA). International Journal of Computer Science Issues, Vol. 10, Issue 4, No 1
Index Terms

Computer Science
Information Sciences

Keywords

QCA Reversible logic gates Feynman gate TR Gate Majority Voter.