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Article detail · 2025

A nano-design of a quantum-based arithmetic and logic unit for enhancing the efficiency of the future IoT applications

Journal

AIP Advances

ISSN 2158-3226

YÖKSİS OpenAlex Open access · gold SJR Q3 JCR Q4 Citations 28 Top 1% Percentile 99.4% FWCI 18.54
Year
2025
Type
article

Data source split

  • YÖKSİS YÖKSİS article record
  • YÖKSİS venue AIP ADVANCES
  • Catalog match (ISSN) AIP Advances
  • OpenAlex OpenAlex enrichment (abstract, citations, topics)

Abstract

OpenAlex · English

The Internet of Things (IoT) is an infrastructure of interconnected devices that gather, monitor, analyze, and distribute data. IoT is an inevitable technology for smart city infrastructure to ensure seamless communication across multiple nodes. IoT, with its ubiquitous application in every sector, ranging from health-care to transportation, energy, education, and agriculture, comes with serious challenges as well. Among the most significant ones is security since the majority of IoT devices do not encrypt normal data transmissions, making it easier for the network to breach and leak data. Traditional technologies such as CMOS and VLSI have the added disadvantage of consuming high energy, further creating avenues for security threats for IoT systems. To counter such problems, we require a new solution to replace traditional technologies with a secure IoT. In contrast to traditional solutions, quantum-based approaches offer promising solutions by significantly reducing the energy footprint of IoT systems. Quantum-dot Cellular Automata (QCA) is one such approach and is an advanced nano-technology that exploits quantum principles to achieve complex computations with the advantages of high speed, less occupied area, and low power consumption. By reducing the energy requirements to a minimum, QCA technology makes IoT devices secure. This paper presents a QCA-based Arithmetic Logic Unit (ALU) as a solution to IoT security problems. The proposed ALU includes more than 12 logical and arithmetic operations and is designed using majority gates, XOR gates, multiplexers, and full adders. The proposed architecture, simulated in QCADesigner 2.0.3, achieves an improvement of 60.45% and 66.66% in cell count and total occupied area, respectively, compared to the best of the existing designs, proving to be effective and efficient.

Topics

Citations

OpenAlex cited_by_count. Not a WoS or Scopus citation count; those sources have no separate column here.

28 citations

OpenAlex cited_by_count (cache / database)

Authors

  1. SEYED SAJAD AHMAD POUR İSTANBUL ATLAS ÜNİVERSİTESİ
  2. MUHAMMAD ZOHAIB İSTANBUL ATLAS ÜNİVERSİTESİ
  3. NIMA JAFARI NAVIMIPOUR
  4. Maryam Zaker
  5. Arash Heidari
  6. Mehdi Hosseinzadeh
  7. Seyed-Sajad Ahmadpour
  8. Sankit Kassa