A 128‐channel receive array for cortical brain imaging at 7 T

Author:

Gruber Bernhard12ORCID,Stockmann Jason P.1ORCID,Mareyam Azma1ORCID,Keil Boris34ORCID,Bilgic Berkin1ORCID,Chang Yulin5,Kazemivalipour Ehsan1ORCID,Beckett Alexander J. S.67ORCID,Vu An T.89ORCID,Feinberg David A.67,Wald Lawrence L.110ORCID

Affiliation:

1. Athinoula A. Martinos Center for Biomedical Imaging, Department of Radiology Massachusetts General Hospital, Harvard Medical School Charlestown Massachusetts USA

2. High Field MR Center, Center for Medical Physics and Biomedical Engineering Medical University Vienna Austria

3. Institute of Medical Physics and Radiation Protection, Department of Life Science Engineering, Mittelhessen University of Applied Sciences Giessen Germany

4. Department of Diagnostic and Interventional Radiology University Hospital Marburg, Philipps University of Marburg Marburg Germany

5. Siemens Medical Solutions USA, Inc. Malvern Pennsylvania USA

6. Advanced MRI Technologies Sebastopol California USA

7. Helen Wills Institute for Neuroscience, University of California Berkeley California USA

8. Radiology, University of California San Francisco California USA

9. San Francisco Veteran Affairs Health Care System San Francisco California USA

10. Division of Health Sciences Technology, Harvard—Massachusetts Institute of Technology Cambridge Massachusetts USA

Abstract

AbstractPurposeA 128‐channel receive‐only array for brain imaging at 7 T was simulated, designed, constructed, and tested within a high‐performance head gradient designed for high‐resolution functional imaging.MethodsThe coil used a tight‐fitting helmet geometry populated with 128 loop elements and preamplifiers to fit into a 39 cm diameter space inside a built‐in gradient. The signal‐to‐noise ratio (SNR) and parallel imaging performance (1/g) were measured in vivo and simulated using electromagnetic modeling. The histogram of 1/g factors was analyzed to assess the range of performance. The array's performance was compared to the industry‐standard 32‐channel receive array and a 64‐channel research array.ResultsIt was possible to construct the 128‐channel array with body noise–dominated loops producing an average noise correlation of 5.4%. Measurements showed increased sensitivity compared with the 32‐channel and 64‐channel array through a combination of higher intrinsic SNR and g‐factor improvements. For unaccelerated imaging, the 128‐channel array showed SNR gains of 17.6% and 9.3% compared to the 32‐channel and 64‐channel array, respectively, at the center of the brain and 42% and 18% higher SNR in the peripheral brain regions including the cortex. For R = 5 accelerated imaging, these gains were 44.2% and 24.3% at the brain center and 86.7% and 48.7% in the cortex. The 1/g‐factor histograms show both an improved mean and a tighter distribution by increasing the channel count, with both effects becoming more pronounced at higher accelerations.ConclusionThe experimental results confirm that increasing the channel count to 128 channels is beneficial for 7T brain imaging, both for increasing SNR in peripheral brain regions and for accelerated imaging.

Funder

National Institute of Biomedical Imaging and Bioengineering

Publisher

Wiley

Subject

Radiology, Nuclear Medicine and imaging

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