Analysis of High Impedance Coils Both in Transmission and Reception Regimes

Theory of a high impedance coil (HIC) - a cable loop antenna with a modified shield - is comprehensively discussed for MRI application in both transmitting and receiving regimes. Understanding a weakness of the previously reported HIC in transmitting regime, we suggest another HIC which is advantage...

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Main Authors: Masoud Sharifian Mazraeh Mollaei, Carel C. Van Leeuwen, Alexander J. E. Raaijmakers, Constantin R. Simovski
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9141227/
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spelling doaj-14c3080ff84c4889bef71da84fa327ff2021-03-30T04:41:58ZengIEEEIEEE Access2169-35362020-01-01812975412976210.1109/ACCESS.2020.30093679141227Analysis of High Impedance Coils Both in Transmission and Reception RegimesMasoud Sharifian Mazraeh Mollaei0https://orcid.org/0000-0001-7111-8653Carel C. Van Leeuwen1Alexander J. E. Raaijmakers2Constantin R. Simovski3https://orcid.org/0000-0003-4338-4713Department of Electronics and Nanoengineering, Aalto University, Espoo, FinlandDepartment of Radiology, UMC Utrecht, Utrecht, The NetherlandsDepartment of Radiology, UMC Utrecht, Utrecht, The NetherlandsDepartment of Electronics and Nanoengineering, Aalto University, Espoo, FinlandTheory of a high impedance coil (HIC) - a cable loop antenna with a modified shield - is comprehensively discussed for MRI application in both transmitting and receiving regimes. Understanding a weakness of the previously reported HIC in transmitting regime, we suggest another HIC which is advantageous in both transmitting and receiving regimes compared to a conventional loop antenna. In contrast with the claim of previous works that the reported HICs are advantageous in transmission regime, we show only this HIC is a practical transceiver HIC. Using the perturbation approach and adding gaps to both shield and inner wire of the cable, we tune the resonance frequency to be suitable for ultra-high field (UHF) magnetic resonance imaging (MRI). These gaps reduce the quality factor of the enhanced HIC which makes its resonant frequency more stable with respect to different loadings. Our theoretical model and applicability of our HIC for MRI applications are verified by simulations. Using the theoretical model, we have designed and fabricated an array of three HICs operating at 298 MHz. The operation of the array has been experimentally studied in the presence of different phantoms used in ultrahigh field MRI and the results compared with those obtained for a conventional array.https://ieeexplore.ieee.org/document/9141227/High impedancemagnetic resonance imagingtransceiver antenna
collection DOAJ
language English
format Article
sources DOAJ
author Masoud Sharifian Mazraeh Mollaei
Carel C. Van Leeuwen
Alexander J. E. Raaijmakers
Constantin R. Simovski
spellingShingle Masoud Sharifian Mazraeh Mollaei
Carel C. Van Leeuwen
Alexander J. E. Raaijmakers
Constantin R. Simovski
Analysis of High Impedance Coils Both in Transmission and Reception Regimes
IEEE Access
High impedance
magnetic resonance imaging
transceiver antenna
author_facet Masoud Sharifian Mazraeh Mollaei
Carel C. Van Leeuwen
Alexander J. E. Raaijmakers
Constantin R. Simovski
author_sort Masoud Sharifian Mazraeh Mollaei
title Analysis of High Impedance Coils Both in Transmission and Reception Regimes
title_short Analysis of High Impedance Coils Both in Transmission and Reception Regimes
title_full Analysis of High Impedance Coils Both in Transmission and Reception Regimes
title_fullStr Analysis of High Impedance Coils Both in Transmission and Reception Regimes
title_full_unstemmed Analysis of High Impedance Coils Both in Transmission and Reception Regimes
title_sort analysis of high impedance coils both in transmission and reception regimes
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description Theory of a high impedance coil (HIC) - a cable loop antenna with a modified shield - is comprehensively discussed for MRI application in both transmitting and receiving regimes. Understanding a weakness of the previously reported HIC in transmitting regime, we suggest another HIC which is advantageous in both transmitting and receiving regimes compared to a conventional loop antenna. In contrast with the claim of previous works that the reported HICs are advantageous in transmission regime, we show only this HIC is a practical transceiver HIC. Using the perturbation approach and adding gaps to both shield and inner wire of the cable, we tune the resonance frequency to be suitable for ultra-high field (UHF) magnetic resonance imaging (MRI). These gaps reduce the quality factor of the enhanced HIC which makes its resonant frequency more stable with respect to different loadings. Our theoretical model and applicability of our HIC for MRI applications are verified by simulations. Using the theoretical model, we have designed and fabricated an array of three HICs operating at 298 MHz. The operation of the array has been experimentally studied in the presence of different phantoms used in ultrahigh field MRI and the results compared with those obtained for a conventional array.
topic High impedance
magnetic resonance imaging
transceiver antenna
url https://ieeexplore.ieee.org/document/9141227/
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