Yan Xinqiang, Zhang Xiaoliang, Wei Long, Xue Rong
State Key Laboratory of Brain and Cognitive Science, Beijing MRI Center for Brain Research, Institute of Biophysics, Chinese Academy of Sciences, Bldg. 11, 15 Datun Road, Chaoyang District, Beijing 100101, China.
Department of Radiology and Biomedical Imaging, University of California San Francisco, Byers Hall, Room 102, 1700 4th ST, San Francisco, CA 94158-2330, USA.
Appl Magn Reson. 2015 Jan;46(1):59-66. doi: 10.1007/s00723-014-0612-9. Epub 2014 Nov 27.
Radio-frequency coil arrays using dipole antenna technique have been recently applied for ultrahigh field magnetic resonance (MR) imaging to obtain the better signal-noise-ratio (SNR) gain at the deep area of human tissues. However, the unique structure of dipole antennas makes it challenging to achieve sufficient electromagnetic decoupling among the dipole antenna elements. Currently, there is no decoupling methods proposed for dipole antenna arrays in MR imaging. The recently developed magnetic wall (MW) or induced current elimination decoupling technique has demonstrated its feasibility and robustness in designing microstrip transmission line arrays, L/C loop arrays and monopole arrays. In this study, we aim to investigate the possibility and performance of MW decoupling technique in dipole arrays for MR imaging at the ultrahigh field of 7T. To achieve this goal, a two-channel MW decoupled dipole array was designed, constructed and analyzed experimentally through bench test and MR imaging. Electromagnetic isolation between the two dipole elements was improved from about -3.6 dB (without any decoupling treatments) to -16.5 dB by using the MW decoupling method. MR images acquired from a water phantom using the MW decoupled dipole array and the geometry factor maps were measured, calculated and compared with those acquired using the dipole array without decoupling treatments. The MW decoupled dipole array demonstrated well-defined image profiles from each element and had better geometry factor over the array without decoupling treatments. The experimental results indicate that the MW decoupling technique might be a promising solution to reducing the electromagnetic coupling of dipole arrays in ultrahigh field MRI, consequently improving their performance in SNR and parallel imaging.
最近,采用偶极天线技术的射频线圈阵列已被应用于超高场磁共振(MR)成像,以在人体组织深部区域获得更好的信噪比(SNR)增益。然而,偶极天线的独特结构使得在偶极天线元件之间实现充分的电磁去耦具有挑战性。目前,尚未提出用于MR成像中偶极天线阵列的去耦方法。最近开发的磁壁(MW)或感应电流消除去耦技术已在微带传输线阵列、L/C环阵列和单极阵列设计中证明了其可行性和稳健性。在本研究中,我们旨在研究MW去耦技术在7T超高场MR成像偶极阵列中的可能性和性能。为实现这一目标,设计、构建了一个双通道MW去耦偶极阵列,并通过台架测试和MR成像进行了实验分析。通过使用MW去耦方法,两个偶极元件之间的电磁隔离从约-3.6 dB(无任何去耦处理)提高到了-16.5 dB。测量、计算了使用MW去耦偶极阵列从水模体获取的MR图像和几何因子图,并与使用未进行去耦处理的偶极阵列获取的图像和几何因子图进行了比较。MW去耦偶极阵列展示了来自每个元件的清晰图像轮廓,并且在阵列上比未进行去耦处理的阵列具有更好的几何因子。实验结果表明,MW去耦技术可能是减少超高场MRI中偶极阵列电磁耦合的一种有前景的解决方案,从而提高其在SNR和平行成像方面的性能。