期刊论文详细信息
Frontiers in Physics 卷:9
Recent Advances and Challenges in the Development of Radiofrequency HTS Coil for MRI
Javier Briatico1  Luc Darrasse2  Marie Poirier-Quinot2  Aimé Labbé2  Gilles Authelet3  Bertrand Baudouy3  Cornelis J. van der Beek4 
[1] Unité mixte de physique, CNRS, Thales, Université Paris-Saclay, Palaiseau, France;
[2] Université Paris-Saclay, CEA, CNRS, Inserm, Laboratoire d'Imagerie Biomédicale Multimodale Paris Saclay, Orsay, France;
[3] Université Paris-Saclay, CEA, Département des Accélérateurs, de Cryogénie et de Magnétisme, Gif-sur-Yvette, France;
[4] Université Paris-Saclay, CNRS, Centre de Nanosciences et de Nanotechnologies, Palaiseau, France;
关键词: high temperature superconductor;    magnetic resonance imaging;    MRI compatible cryostat;    nonlinear properties of superconductors;    HTS coil;    cryogenics;   
DOI  :  10.3389/fphy.2021.705438
来源: DOAJ
【 摘 要 】

Radiofrequency (RF) coils fashioned from high-temperature superconductor (HTS) have the potential to increase the sensitivity of the magnetic resonance imaging (MRI) experiment by more than a dozen times compared to conventional copper coils. Progress, however, has been slow due to a series of technological hurdles. In this article, we present the developments that recently led to new perspectives for HTS coil in MRI, and challenges that still need to be solved. First, we recall the motivations for the implementations of HTS coils in MRI by presenting the limits of cooled copper coil technology, such as the anomalous skin effect limiting the decrease of the electric resistance of normal conductors at low temperature. Then, we address the progress made in the development of MRI compatible cryostats. New commercially available low-noise pulsed-tube cryocoolers and new materials removed the need for liquid nitrogen-based systems, allowing the design of cryogen-free and more user-friendly cryostats. Another recent advance was the understanding of how to mitigate the imaging artifacts induced by HTS diamagnetism through field cooling or temperature control of the HTS coil. Furthermore, artifacts can also originate from the RF field coupling between the transmission coil and the HTS reception coil. Here, we present the results of an experiment implementing a decoupling strategy exploiting nonlinearities in the electric response of HTS materials. Finally, we discuss the potential applications of HTS coils in bio-imaging and its prospects for further improvements. These include making the technology more user-friendly, implementing the HTS coils as coil arrays, and proposing solutions for the ongoing issue of decoupling. HTS coil still faces several challenges ahead, but the significant increase in sensitivity it offers lends it the prospect of being ultimately disruptive.

【 授权许可】

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