Nano-Design of Ultra-Efficient Reversible Block Based on Quantum-Dot Cellular Automata
Loading...
Date
2023
Authors
Ahmadpour, Seyed Sajad
Navimipour, Nima Jafari
Mosleh, Mohammad
Yalcin, Senay
Journal Title
Journal ISSN
Volume Title
Publisher
Zhejiang Univ Press
Open Access Color
Green Open Access
No
OpenAIRE Downloads
OpenAIRE Views
Publicly Funded
No
Abstract
Reversible logic has recently gained significant interest due to its inherent ability to reduce energy dissipation, which is the primary need for low-power digital circuits. One of the newest areas of relevant study is reversible logic, which has applications in many areas, including nanotechnology, DNA computing, quantum computing, fault tolerance, and low-power complementary metal-oxide-semiconductor (CMOS). An electrical circuit is classified as reversible if it has an equal number of inputs and outputs, and a one-to-one relationship. A reversible circuit is conservative if the EXOR of the inputs and the EXOR of the outputs are equivalent. In addition, quantum-dot cellular automata (QCA) is one of the state-of-the-art approaches that can be used as an alternative to traditional technologies. Hence, we propose an efficient conservative gate with low power demand and high speed in this paper. First, we present a reversible gate called ANG (Ahmadpour Navimipour Gate). Then, two non-resistant QCA ANG and reversible fault-tolerant ANG structures are implemented in QCA technology. The suggested reversible gate is realized through the Miller algorithm. Subsequently, reversible fault-tolerant ANG is implemented by the 2DW clocking scheme. Furthermore, the power consumption of the suggested ANG is assessed under different energy ranges (0.5Ek, 1.0Ek, and 1.5Ek). Simulations of the structures and analysis of their power consumption are performed using QCADesigner 2.0.03 and QCAPro software. The proposed gate shows great improvements compared to recent designs.
Description
Keywords
Nanotechnology, Reversible logic, Energy dissipation, Quantum-dot cellular automata (QCA), Reversible gate, Miller algorithm, TN79, Quantum-dot cellular automata (QCA), Energy dissipation, Reversible gate, Reversible logic, Nanotechnology, Miller algorithm, TN79
Turkish CoHE Thesis Center URL
Fields of Science
Citation
WoS Q
Q2
Scopus Q
Q2

OpenCitations Citation Count
4
Source
Frontiers of Information Technology & Electronic Engineering
Volume
24
Issue
3
Start Page
447
End Page
456
PlumX Metrics
Citations
CrossRef : 2
Scopus : 13
Captures
Mendeley Readers : 1
SCOPUS™ Citations
13
checked on Feb 08, 2026
Web of Science™ Citations
9
checked on Feb 08, 2026
Page Views
5
checked on Feb 08, 2026
Downloads
165
checked on Feb 08, 2026
Google Scholar™


