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Common-Mode Differential-Mode (CMDM) Method for Double-Nuclear MR Signal Excitation and Reception at Ultrahigh Fields

机译:超高场双核MR信号激励和接收的共模差模(CMDM)方法

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摘要

Double-tuned radio-frequency (RF) coils for heteronuclear mangentic resonance (MR) require sufficient electromagnetic isolation between the two resonators operating at two Larmor frequencies and independent tuning in order to attain highly efficient signal acquisition at each frequency. In this work, a novel method for double-tuned coil design at 7T based on the concept of common-mode differential-mode (CMDM) was developed and tested. Common mode (CM) and differential mode (DM) currents exist within two coupled parallel transmission lines, e.g., microstrip lines, yielding two different current distributions. The electromagnetic (EM) fields of the CM and DM are orthogonal to each other, and thus, the two modes are intrinsically EM decoupled. The modes can be tuned independently to desired frequencies, thus satisfying the requirement of dual-frequency MR applications. To demonstrate the feasibility and efficiency of the proposed CMDM technique, CMDM surface coils and volume coils using microstrip transmission line for ${}^{1}$H and ${}^{13}$C MRI/MRSI were designed, constructed, and tested at 7T. Bench test results showed that the isolations between the two frequency channels of the CMDM surface coil and volume coil were better than ${-}30$ and ${-}25$ dB, respectively. High quality MR phantom images were also obtained using the CMDM coils. The performance of the CMDM technique was validated through a comparison with the conventional two-pole design method at 7T. The proposed CMDM technique can be also implemented by using other coil techniques such as lumped element method, and can be applied to designing double-tuned parallel imaging coil arrays. Furthermore, if the two resonant modes of a CMDM-n-n coil were tuned to the same frequency, the CMDM coil becomes a quadrature coil due to the intrinsic orthogonal field distribution of CM and DM.
机译:用于异核磁共振共振(MR)的双调谐射频(RF)线圈需要在两个拉莫尔频率下工作的两个共振器之间进行充分的电磁隔离,并进行独立调谐,以便在每个频率下获得高效的信号采集。在这项工作中,开发并测试了一种基于共模差模(CMDM)概念的7T双调谐线圈设计的新方法。共模(CM)和差模(DM)电流存在于两条耦合的并行传输线(例如微带线)中,产生两种不同的电流分布。 CM和DM的电磁场彼此正交,因此,这两种模式本质上是EM解耦的。这些模式可以独立地调谐到所需频率,从而满足双频MR应用的要求。为了证明所提出的CMDM技术的可行性和效率,设计,构造了使用微带传输线的$ {} ^ {1} $ H和$ {} ^ {13} $ C MRI / MRSI的CMDM表面线圈和体积线圈,并在7T测试。基准测试结果表明,CMDM表面线圈和体线圈的两个频率通道之间的隔离度分别优于$ {-} 30 $和$ {-} 25 $ dB。使用CMDM线圈也可以获得高质量的MR幻像图像。通过与传统的两极设计方法在7T下进行比较,验证了CMDM技术的性能。所提出的CMDM技术还可以通过使用诸如集总元件法之类的其他线圈技术来实现,并且可以应用于设计双调谐并行成像线圈阵列。此外,如果将CMDM-n-n线圈的两个谐振模式调谐到相同的频率,则由于CM和DM的固有正交场分布,CMDM线圈将变成正交线圈。

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