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Metamaterial-inspired antenna array for application in microwave breast imaging systems for tumor detection

  • Mohammad Alibakhshikenari
  • , Bal S. Virdee
  • , Panchamkumar Shukla
  • , Naser Ojaroudi Parchin
  • , Leyre Azpilicueta
  • , Chan Hwang See
  • , Raed A. Abd-Alhameed
  • , Francisco Falcone
  • , Isabelle Huynen
  • , Tayeb A. Denidni
  • , Ernesto Limiti
  • Electronics Engineering Department
  • University of Rome "Tor Vergata"
  • London Metropolitan University
  • University of Bradford
  • Instituto Tecnológico de Estudios Superiores de Monterrey
  • Edinburgh Napier University
  • Public University of Navarre
  • Université Catholique de Louvain
  • INRS-Océanologie

Research output: Contribution to a Journal (Peer & Non Peer)Articlepeer-review

153 Citations (Scopus)

Abstract

This paper presents a study of a planar antenna-array inspired by the metamaterial concept where the resonant elements have sub-wavelength dimensions for application in microwave medical imaging systems for detecting tumors in biological tissues. The proposed antenna consists of square-shaped concentric-rings which are connected to a central patch through a common feedline. The array structure comprises several antennas that are arranged to surround the sample breast model. One antenna at a time in the array is used in transmission-mode while others are in receive-mode. The antenna array operates over 2-12 GHz amply covering the frequency range of existing microwave imaging systems. Measured results show that compared to a standard patch antenna array the proposed array with identical dimensions exhibits an average radiation gain and efficiency improvement of 4.8 dBi and 18%, respectively. The average refiection-coefficient of the array over its operating range is better than S11 = -20 dB making it highly receptive to weak signals and minimizing the distortion encountered with the transmission of short duration pulse-trains. Moreover, the proposed antenna-array exhibits high-isolation on average of 30dB between radiators. This means that antennas in the array (i) can be closely spaced to accommodate more radiators to achieve higher-resolution imaging scans, and (ii) the imagining scans can be done over a wider frequency range to ascertain better contrast in electrical parameters between malignant tumor-tissue and the surrounding normal breast-tissue to facilitate the detection of breast-tumor. It is found that short wavelength gives better resolution. In this experimental study a standard biomedical breast model that mimics a real-human breast in terms of dielectric and optical properties was used to demonstrate the viability of the proposed antenna over a standard patch antenna in the detection and the localization of tumor. These results are encouraging for clinical trials and further refinement of the antenna-array.

Original languageEnglish
Article number3025672
Pages (from-to)174667-174678
Number of pages12
JournalIEEE Access
Volume8
DOIs
Publication statusPublished - 2020
Externally publishedYes

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Array antenna
  • Biosensor
  • Cancer
  • Medical imaging
  • Metamaterial
  • Microstrip technology
  • Microwave breast imaging systems
  • Tumor detection

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