Department of Medicine, John A. Burns School of Medicine, Honolulu, Hawaii 96813-2427, USA.
Magn Reson Med. 2010 Jul;64(1):1-8. doi: 10.1002/mrm.22471.
Susceptibility artifacts and excitation radiofrequency field B(1)+ inhomogeneity are major limitations in high-field MRI. Parallel transmission methods are promising for reducing artifacts in high-field applications. In particular, three-dimensional RF pulses have been shown to be useful for reducing B(1)+ inhomogeneity using multiple transmitters due to their ability to spatially shape the slice profile. Recently, two-dimensional spectral-spatial pulses have been demonstrated to be effective for reducing the signal loss susceptibility artifact by incorporating a frequency-dependent through-plane phase correction. We present the use of four-dimensional spectral-spatial RF pulses for simultaneous B(1)+ and through-plane signal loss susceptibility artifact compensation. The method is demonstrated with simulations and in T(2)*-weighted human brain images at 3 T, using a four-channel parallel transmission system. Parallel transmission was used to reduce the in-plane excitation resolution to improve the slice-selection resolution between two different pulse designs. Both pulses were observed to improve B(1)+ homogeneity and reduce the signal loss artifact in multiple slice locations and several human volunteers.
在高场 MRI 中,易感性伪影和激励射频场 B(1)+不均匀性是主要限制因素。并行传输方法有望减少高场应用中的伪影。特别是,由于三维 RF 脉冲能够对切片轮廓进行空间整形,因此已被证明可用于通过多个发射器减少 B(1)+不均匀性。最近,二维谱-空间脉冲已被证明通过结合频率相关的穿透相位校正对于减少信号损失易感性伪影是有效的。我们提出了使用四维谱-空间 RF 脉冲来同时补偿 B(1)+和穿透平面信号损失易感性伪影。该方法使用模拟和在 3 T 下的 T(2)*加权人脑图像进行了演示,使用了四通道并行传输系统。并行传输用于减小平面激励分辨率,以改善两个不同脉冲设计之间的切片选择分辨率。在多个切片位置和几个志愿者中观察到这两个脉冲都可以改善 B(1)+均匀性并减少信号损失伪影。