» Articles » PMID: 33978270

Folded-end Dipole Transceiver Array for Human Whole-brain Imaging at 7 T

Overview
Journal NMR Biomed
Publisher Wiley
Date 2021 May 12
PMID 33978270
Citations 4
Authors
Affiliations
Soon will be listed here.
Abstract

The advancement of clinical applications of ultrahigh field (UHF) MRI depends heavily on advances in technology, including the development of new radiofrequency (RF) coil designs. Currently, the number of commercially available 7 T head RF coils is rather limited, implying a need to develop novel RF head coil designs that offer superior transmit and receive performance. RF coils to be used for clinical applications must be robust and reliable. In particular, for transmit arrays, if a transmit channel fails the local specific absorption rate may increase, significantly increasing local tissue heating. Recently, dipole antennas have been proposed and used to design UHF head transmit and receive arrays. The dipole provides a unique simplicity while offering comparable transmit efficiency and signal-to-noise ratio with the conventional loop design. Recently, we developed a novel array design in our laboratory using a folded-end dipole antenna. In this work, we developed, constructed and evaluated an eight-element transceiver bent folded-end dipole array for human head imaging at 7 T. Driven in the quadrature circularly polarized mode, the array demonstrated more than 20% higher transmit efficiency and significantly better whole-brain coverage than that provided by a widely used commercial array. In addition, we evaluated passive dipole antennas for decoupling the proposed array. We demonstrated that in contrast to the common unfolded dipole array, the passive dipoles moved away from the sample not only minimize coupling between the adjacent folded-end active dipoles but also produce practically no destructive interference with the quadrature mode of the array.

Citing Articles

Combining Dipole and Loop Coil Elements for 7 T Magnetic Resonance Studies of the Human Calf Muscle.

Cap V, Rocha Dos Santos V, Repnin K, cerveny D, Laistler E, Meyerspeer M Sensors (Basel). 2024; 24(11).

PMID: 38894105 PMC: 11174775. DOI: 10.3390/s24113309.


Subwavelength dielectric waveguide for efficient travelling-wave magnetic resonance imaging.

Gao Y, Liu T, Hong T, Fang Y, Jiang W, Zhang X Nat Commun. 2024; 15(1):2298.

PMID: 38485742 PMC: 10940709. DOI: 10.1038/s41467-024-46638-5.


Computational methods for the estimation of ideal current patterns in realistic human models.

Giannakopoulos I, Georgakis I, Sodickson D, Lattanzi R Magn Reson Med. 2023; 91(2):760-772.

PMID: 37800398 PMC: 11467686. DOI: 10.1002/mrm.29864.


Bench to bore ramifications of inter-subject head differences on RF shimming and specific absorption rates at 7T.

Hardy B, Banik R, Yan X, Anderson A Magn Reson Imaging. 2022; 92:187-196.

PMID: 35842192 PMC: 9376015. DOI: 10.1016/j.mri.2022.07.009.