Department of Neurosurgery, Yale University, New Haven, CT, USA.
NMR Biomed. 2009 Nov;22(9):960-74. doi: 10.1002/nbm.1262.
This article describes technological advances in quadrature transverse electromagnetic (TEM) volume coils and phased arrays reported recently from our laboratory developed for MRI and MRS imaging of the human brain. The first part of this work presents a new method for tuning TEM volume coils based on measurements of the radiofrequency current distribution in the coil elements. This technique facilitates bench adjustment of the coils' homogeneity and is particularly important for tuning double-tuned TEM volume coils. We have also used this method to optimize other TEM configurations such as a quadrature TEM half-volume coil and a split TEM coil. TEM half-volume coils provide greater sensitivity over localized regions than conventional full-volume coils, and the split TEM coil provides greater patient access and ease of use. The second part of this work describes the development of single-tuned and double-tuned transmit TEM volume coils in combination with phased arrays. A variety of different techniques for active detuning of single-tuned and double-tuned TEM volume coils are presented along with the development of phased arrays and transmission line preamplifier decoupling. The final section describes the use of counter rotating current (CRC) surface coils in phased arrays. Because of the intrinsic isolation of CRC coils from transmit volume coils, CRC arrays can be used simultaneously with volume coils for both reception and transmission. Near the center of the human head where both the phased array and the volume coil produce similar sensitivities, simultaneous reception enhances the signal-to-noise ratio. Conversely, simultaneous transmission can be used to boost the transmit field in peripheral brain regions from the volume coil to provide a more homogeneous transmit field.
本文描述了我们实验室最近在正交横向电磁(TEM)容积线圈和相控阵方面的技术进展,这些进展是为了进行人脑的 MRI 和 MRS 成像而开发的。这部分工作的第一部分介绍了一种基于测量线圈元件中的射频电流分布来调整 TEM 容积线圈的新方法。该技术有助于在台架上调整线圈的均匀性,对于调整双调谐 TEM 容积线圈尤其重要。我们还使用这种方法优化了其他 TEM 配置,例如正交 TEM 半容积线圈和分割 TEM 线圈。TEM 半容积线圈比传统的全容积线圈在局部区域提供更高的灵敏度,而分割 TEM 线圈则提供更大的患者通道和易用性。这部分工作的第二部分描述了单调谐和双调谐发射 TEM 容积线圈与相控阵的结合。本文介绍了多种不同的单调谐和双调谐 TEM 容积线圈的主动调谐技术,以及相控阵和传输线前置放大器去耦的发展。最后一部分描述了在相控阵中使用反向旋转电流(CRC)表面线圈。由于 CRC 线圈与发射容积线圈的固有隔离,CRC 阵列可与容积线圈同时用于接收和发射。在人头的中心附近,相控阵和容积线圈产生相似的灵敏度,同时接收可增强信噪比。相反,可同时使用容积线圈的传输场来提高外周脑区的传输场,以提供更均匀的传输场。