Center for Magnetic Resonance Research (CMRR), Department of Radiology, University of Minnesota, Minnesota, USA.
NMR Biomed. 2023 Aug;36(8):e4930. doi: 10.1002/nbm.4930. Epub 2023 Apr 18.
Low-γ X-nuclear MRS and imaging have played a key role in studying metabolism and physiopathology, especially at ultrahigh fields. We design and demonstrate a novel and simple dual-frequency RF resonant coil that can operate at both low-γ X-nuclear and proton frequencies. The dual-frequency resonant coil comprises an LC coil loop and a tuning-matching circuit bridged by two short wires of the desired length to generate two resonant modes: one for proton MRI and the other for low-γ X-nuclear MRS imaging with a large difference in their Larmor frequencies at ultrahigh fields. The coil parameters for the desired coil size and resonant frequencies can be determined via numerical simulations based on LC circuit theory. We designed, constructed, and evaluated several prototype surface coils and quadrature array coils for H and H or O imaging, with small-sized (diameter ≤ 5 cm) coils evaluated using a 16.4 T animal scanner, and a large-sized (15 cm diameter) coil on a 7 T human scanner. All coils could be tuned/matched and driven in the single coil or array coil mode to the resonant frequencies of H (698 and 298 MHz), H (107 and 45.8 MHz), or O (94.7 and 40.4 MHz) for imaging measurements and evaluation at 16.4 and 7 T, respectively. The dual-frequency resonant coil or array provides adequate detection sensitivity for H MRI and excellent performance for low-γ X-nuclear MRS imaging applications, and excellent coil decoupling efficiency between the array coils at both resonant frequencies with an optimal geometric overlap. It provides a simple, cost-effective dual-frequency RF coil solution to perform low-γ X-nuclear MRS imaging for preclinical and human applications, especially at ultrahigh fields.
低γ X 核磁共振波谱和成像在研究代谢和生理病理学方面发挥了关键作用,尤其是在超高场强下。我们设计并展示了一种新颖而简单的双频射频共振线圈,它可以在低γ X 核和质子频率下工作。双频共振线圈由 LC 线圈环路和调谐匹配电路组成,通过两根所需长度的短电线桥接,产生两种共振模式:一种用于质子 MRI,另一种用于低γ X 核磁共振波谱成像,其拉莫尔频率差异很大在超高场强下。所需线圈尺寸和共振频率的线圈参数可以通过基于 LC 电路理论的数值模拟来确定。我们设计、构建和评估了几种用于 H 和 H 或 O 成像的原型表面线圈和正交阵列线圈,使用小型(直径≤5cm)线圈在 16.4 T 动物扫描仪上进行评估,以及在 7 T 人体扫描仪上进行大型(15cm 直径)线圈。所有线圈都可以在单个线圈或阵列线圈模式下调谐/匹配并驱动到 H 的共振频率(698 和 298 MHz)、 H 的共振频率(107 和 45.8 MHz)或 O 的共振频率(94.7 和 40.4 MHz),分别用于在 16.4 和 7 T 进行成像测量和评估。双频共振线圈或阵列为 H MRI 提供了足够的检测灵敏度,为低γ X 核磁共振波谱成像应用提供了出色的性能,并且在两个共振频率下都具有最佳的几何重叠,实现了阵列线圈之间出色的线圈去耦效率。它为进行低γ X 核磁共振波谱成像提供了一种简单、经济高效的双频射频线圈解决方案,适用于临床前和人体应用,尤其是在超高场强下。