DocumentCode :
58096
Title :
7T Transmit/Receive Arrays Using ICE Decoupling for Human Head MR Imaging
Author :
Xinqiang Yan ; Xiaoliang Zhang ; Baotong Feng ; ChuangXin Ma ; Long Wei ; Rong Xue
Author_Institution :
Key Lab. of Nucl. Anal. Tech., Inst. of High Energy Phys., Beijing, China
Volume :
33
Issue :
9
fYear :
2014
fDate :
Sept. 2014
Firstpage :
1781
Lastpage :
1787
Abstract :
In designing large-sized volume type phased array coils for human head imaging at ultrahigh fields, e.g., 7T, minimizing electromagnetic coupling among array elements is technically challenging. A new decoupling method based on induced current compensation or elimination (ICE) for a microstrip line planar array has recently been proposed. In this study, an eight-channel transmit/receive volume array with ICE-decoupled loop elements was built and investigated to demonstrate its feasibility and robustness for human head imaging at 7T. Isolation between adjacent loop elements was better than - 25 dB with a human head load. The worst-case of the isolation between all of the elements was about - 17.5 dB. All of the MRI experiments were performed on a 7T whole-body human MR scanner. Images of the phantom and human head were acquired and g-factor maps were measured and calculated to evaluate the performance of the coil array. Compared with the conventional capacitively decoupled array, the ICE-decoupled array demonstrated improved parallel imaging ability and had a higher SNR. The experimental results indicate that the transceiver array design with ICE decoupling technique might be a promising solution to designing high performance transmit/receive coil arrays for human head imaging at ultrahigh fields.
Keywords :
biomedical MRI; compensation; medical image processing; phantoms; 7T receive coil arrays; 7T transmit coil arrays; 7T whole-body human MR scanner; ICE decoupling technique; ICE-decoupled loop elements; g-factor maps; human head MR imaging; human head load; parallel imaging ability; phantom; receive volume array; transceiver array; transmit volume array; Coils; Head; Ice; Magnetic resonance imaging; Signal to noise ratio; Transceivers; Decoupling; high field magnetic resonance imaging (MRI); human head; induced current compensation or elimination (ICE); loop; parallel imaging; phased array; radio-frequency (RF) coil;
fLanguage :
English
Journal_Title :
Medical Imaging, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0062
Type :
jour
DOI :
10.1109/TMI.2014.2313879
Filename :
6781623
Link To Document :
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