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BLIPPED (BLIpped Pure Phase EncoDing) high resolution MRI with low amplitude gradients.

作者信息

Xiao Dan, Balcom Bruce J

机构信息

Department of Physics, University of Windsor, Canada; MRI Research Center, Department of Physics, University of New Brunswick, Canada.

MRI Research Center, Department of Physics, University of New Brunswick, Canada.

出版信息

J Magn Reson. 2017 Dec;285:61-67. doi: 10.1016/j.jmr.2017.10.013. Epub 2017 Oct 31.

DOI:10.1016/j.jmr.2017.10.013
PMID:29112892
Abstract

MRI image resolution is proportional to the maximum k-space value, i.e. the temporal integral of the magnetic field gradient. High resolution imaging usually requires high gradient amplitudes and/or long spatial encoding times. Special gradient hardware is often required for high amplitudes and fast switching. We propose a high resolution imaging sequence that employs low amplitude gradients. This method was inspired by the previously proposed PEPI (π Echo Planar Imaging) sequence, which replaced EPI gradient reversals with multiple RF refocusing pulses. It has been shown that when the refocusing RF pulse is of high quality, i.e. sufficiently close to 180°, the magnetization phase introduced by the spatial encoding magnetic field gradient can be preserved and transferred to the following echo signal without phase rewinding. This phase encoding scheme requires blipped gradients that are identical for each echo, with low and constant amplitude, providing opportunities for high resolution imaging. We now extend the sequence to 3D pure phase encoding with low amplitude gradients. The method is compared with the Hybrid-SESPI (Spin Echo Single Point Imaging) technique to demonstrate the advantages in terms of low gradient duty cycle, compensation of concomitant magnetic field effects and minimal echo spacing, which lead to superior image quality and high resolution. The 3D imaging method was then applied with a parallel plate resonator RF probe, achieving a nominal spatial resolution of 17 μm in one dimension in the 3D image, requiring a maximum gradient amplitude of only 5.8 Gauss/cm.

摘要

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