## Abstract A new pulse technique for counteracting RF inhomogeneity at high fields is reported. The pulses make use of the detailed knowledge of the voxels' __B__~1~ and __B__~0~ amplitude 2D histogram to generate, through an optimization procedure, gates where the flip angle is made uniform. Alth
Tailored RF pulse for magnetization inversion at ultrahigh field
✍ Scribed by Aaron C. Hurley; Ali Al-Radaideh; Li Bai; Uwe Aickelin; Ron Coxon; Paul Glover; Penny A. Gowland
- Publisher
- John Wiley and Sons
- Year
- 2009
- Tongue
- English
- Weight
- 699 KB
- Volume
- 63
- Category
- Article
- ISSN
- 0740-3194
No coin nor oath required. For personal study only.
✦ Synopsis
Abstract
The radiofrequency (RF) transmit field is severely inhomogeneous at ultrahigh field due to both RF penetration and RF coil design issues. This particularly impairs image quality for sequences that use inversion pulses such as magnetization prepared rapid acquisition gradient echo and limits the use of quantitative arterial spin labeling sequences such as flow‐attenuated inversion recovery. Here we have used a search algorithm to produce inversion pulses tailored to take into account the heterogeneity of the RF transmit field at 7 T. This created a slice selective inversion pulse that worked well (good slice profile and uniform inversion) over the range of RF amplitudes typically obtained in the head at 7 T while still maintaining an experimentally achievable pulse length and pulse amplitude in the brain at 7 T. The pulses used were based on the frequency offset correction inversion technique, as well as time dilation of functions, but the RF amplitude, frequency sweep, and gradient functions were all generated using a genetic algorithm with an evaluation function that took into account both the desired inversion profile and the transmit field inhomogeneity. Magn Reson Med, 2009. © 2009 Wiley‐Liss, Inc.
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