Integration of an RF coil and commercial field camera for ultrahigh-field MRI

被引:11
作者
Gilbert, Kyle M. [1 ,2 ]
Dubovan, Paul, I [1 ,2 ]
Gati, Joseph S. [1 ,2 ]
Menon, Ravi S. [1 ,2 ]
Baron, Corey A. [1 ,2 ]
机构
[1] Univ Western Ontario, Ctr Funct & Metab Mapping, 1151 Richmond St North, London, ON N6A 5B7, Canada
[2] Univ Western Ontario, Dept Med Biophys, London, ON, Canada
基金
加拿大自然科学与工程研究理事会; 加拿大创新基金会;
关键词
field monitoring; functional imaging; magnetic resonance imaging; radiofrequency coil; ultrahigh field; DIFFUSION MRI; STEADY-STATE; NMR PROBES; BRAIN; RECONSTRUCTION; COMPENSATION; FLUCTUATIONS; ARRAY; ARTIFACTS; SYSTEM;
D O I
10.1002/mrm.29130
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Purpose To develop an RF coil with an integrated commercial field camera for ultrahigh field (7T) neuroimaging. The RF coil would operate within a head-only gradient coil and be subject to the corresponding design constraints. The RF coil can thereafter be used for subject-specific correction of k-space trajectories-notably in gradient-sensitive sequences such as single-shot spiral imaging. Methods The transmit and receive performance was evaluated before and after the integration of field probes, whereas field probes were evaluated when in an optimal configuration external to the coil and after their integration. Diffusion-weighted EPI and single-shot spiral acquisitions were employed to evaluate the efficacy of correcting higher order field perturbations and the consequent effect on image quality. Results Field probes had a negligible effect on RF-coil performance, including the transmit efficiency, transmit uniformity, and mean SNR over the brain. Modest reductions in field-probe signal lifetimes were observed, caused primarily by nonidealities in the gradient and shim fields of the head-only gradient coil at the probe positions. The field-monitoring system could correct up to second-order field perturbations in single-shot spiral imaging. Conclusion The integrated RF coil and field camera was capable of concurrent-field monitoring within a 7T head-only scanner and facilitated the subsequent correction of k-space trajectories during spiral imaging.
引用
收藏
页码:2551 / 2565
页数:15
相关论文
共 64 条
  • [1] Barmet C, 2009, P 17 ANN M ISMRM HON, P781
  • [2] Spatiotemporal magnetic field monitoring for MR
    Barmet, Christoph
    De Zanche, Nicola
    Pruessmann, Klaas P.
    [J]. MAGNETIC RESONANCE IN MEDICINE, 2008, 60 (01) : 187 - 197
  • [3] A Transmit/Receive System for Magnetic Field Monitoring of In Vivo MRI
    Barmet, Christoph
    De Zanche, Nicola
    Wilm, Bertram J.
    Pruessmann, Klaas P.
    [J]. MAGNETIC RESONANCE IN MEDICINE, 2009, 62 (01) : 269 - 276
  • [4] Rapid compressed sensing reconstruction of 3D non-Cartesian MRI
    Baron, Corey A.
    Dwork, Nicholas
    Pauly, John M.
    Nishimura, Dwight G.
    [J]. MAGNETIC RESONANCE IN MEDICINE, 2018, 79 (05) : 2685 - 2692
  • [5] Fully integrated probe for proton nuclear magnetic resonance magnetometry
    Boero, G
    Frounchi, J
    Furrer, B
    Besse, PA
    Popovic, RS
    [J]. REVIEW OF SCIENTIFIC INSTRUMENTS, 2001, 72 (06) : 2764 - 2768
  • [6] TEMPORAL AND SPATIAL-ANALYSIS OF FIELDS GENERATED BY EDDY CURRENTS IN SUPERCONDUCTING MAGNETS - OPTIMIZATION OF CORRECTIONS AND QUANTITATIVE CHARACTERIZATION OF MAGNET GRADIENT SYSTEMS
    BOESCH, C
    GRUETTER, R
    MARTIN, E
    [J]. MAGNETIC RESONANCE IN MEDICINE, 1991, 20 (02) : 268 - 284
  • [7] Analysis and correction of field fluctuations in fMRI data using field monitoring
    Bollmann, Saskia
    Kasper, Lars
    Vannesjo, S. Johanna
    Diaconescu, Andreea O.
    Dietrich, Benjamin E.
    Gross, Simon
    Stephan, Klaas E.
    Pruessmann, Klaas P.
    [J]. NEUROIMAGE, 2017, 154 : 92 - 105
  • [8] Brunheim S., 2020, Proceedings of the 28th Annual Meeting of the International Society for Magnetic Resonance in Medicine (ISMRM), P3389
  • [9] Brunner DO, 2019, P 27 ANN M ISMRM MON, P1046
  • [10] Burl M., 2005, US Patent, Patent No. 6850067