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Auxiliary phase encoding in multi spin-echo sequences: Application to rapid current density imaging

机译:多自旋回波序列中的辅助相位编码:在快速电流密度成像中的应用

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Multi spin-echo sequences such as single-shot RARE are very sensitive to the initial phase of the transverse magnetization, and they can preserve only the transverse magnetization component which is aligned with the axis of the refocusing pulse rotation. Therefore, two separate single-shot RARE experiments with phases of refocusing pulses 90 apart have to be run and their complex images summed to obtain an error-free phase map of the initial transverse magnetization. This is particularly useful when auxiliary phase encoding is integrated in the preparation period of the RARE sequence, such as when encoding flow, displacement, susceptibility, pH or temperature. In this paper, the two-shot RARE approach is verified first theoretically and then experimentally by demonstrating its application to rapid current density imaging (CDI). The sequence consists of the preparation period which triggers electric pulses in the sample followed by the RARE acquisition period. Electric currents through the sample induce a magnetic field change in the direction of the static magnetic field and a phase change of the initial magnetization proportional to it. To calculate one component of current density two orthogonal components of magnetic field change must be measured. In general, for 2D non-symmetrical samples, this can be done by rotating the sample to a perpendicular orientation. The proposed CDI method allows much for faster magnetic field change mapping than the standard spin-echo based CDI. (c) 2007 Elsevier Inc. All rights reserved.
机译:多重自​​旋回波序列(如单脉冲RARE)对横向磁化的初始阶段非常敏感,并且它们只能保留与重新聚焦脉冲旋转轴对齐的横向磁化分量。因此,必须运行两个分开的单次RARE实验,将重聚焦脉冲的相位分开90个相位,并将它们的复杂图像相加以获得初始横向磁化的无误差相位图。当辅助相位编码集成在RARE序列的准备期间时,例如在编码流量,位移,磁化率,pH或温度时,这特别有用。在本文中,通过证明其在快速电流密度成像(CDI)中的应用,首先在理论上然后在实验上验证了两次RARE方法。该序列由触发样品中电脉冲的准备周期和随后的RARE采集周期组成。通过样品的电流会在静磁场方向上引起磁场变化,并且初始磁化强度的相位变化与之成正比。为了计算电流密度的一个分量,必须测量磁场变化的两个正交分量。通常,对于2D非对称样本,可以通过将样本旋转到垂直方向来完成。所提出的CDI方法比基于标准自旋回波的CDI允许更快的磁场变化映射。 (c)2007 Elsevier Inc.保留所有权利。

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