Detunable wireless Litzcage coil for human head MRI at 1.5 T

Author:

Zhu Haoqin1,Lang Michael L.12,Yang Yijin3,Martin Melanie2,Zhang Gong4,Zhang Qiang5,Chen Yuanyuan6,Yan Xinqiang378

Affiliation:

1. Sino Canada Health Institute Inc. Winnipeg Manitoba Canada

2. Department of Physics The University of Winnipeg Winnipeg Manitoba Canada

3. Department of Electrical and Computer Engineering Vanderbilt University Nashville Tennessee USA

4. Hubei Key Laboratory of Intelligent Conveying Technology and Device Hubei Polytechnic University Huangshi China

5. The Affiliated Hospital of Inner Mongolia Medical University Hohhot China

6. Sino Canada Health Engineering Research Institute (Hefei) Ltd. Hefei Anhui China

7. Vanderbilt University Institute of Imaging Science Vanderbilt University Medical Center Nashville Tennessee USA

8. Department of Radiology and Radiological Sciences Vanderbilt University Medical Center Nashville Tennessee USA

Abstract

AbstractInductively coupled radiofrequency (RF) coils are an inexpensive and simple method to realize wireless RF coils in magnetic resonance imaging (MRI), which can significantly ease the MRI scan setup and improve patient comfort because they do not require bulky components such as cables, baluns, preamplifiers, and connectors. However, volume‐type wireless coils are typically operated in transmit/receive mode because detuning such coils is much more challenging due to their complex structure and multiple resonant modes. Meanwhile, adding too many detuning circuits to a wireless coil would decrease the coil's quality factor, impair the signal‐to‐noise ratio, and increase the cost. In this work, we proposed, constructed, and tested a novel wireless volume coil based on the Litzcage design for 1.5‐T head imaging. Being an inductively coupled coil, it has a much simpler structure, resulting in a lighter weight and less bulky design. Despite its simpler structure, it exhibits comparable imaging performance with a commercial receive array, providing an alternative to conventional wired coils with a high cost and complex structure. The unique figure‐of‐8 conductor pattern within the rungs ensures that the proposed wireless Litzcage can be efficiently detuned with minimal detuning circuits.

Publisher

Wiley

Subject

Spectroscopy,Radiology, Nuclear Medicine and imaging,Molecular Medicine

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