Abstract
Low-γ X-nuclear MRS and imaging have played a key role in studying metabolism and physiopathology, especially at ultrahigh fields. We design and demonstrate a novel and simple dual-frequency RF resonant coil that can operate at both low-γ X-nuclear and proton frequencies. The dual-frequency resonant coil comprises an LC coil loop and a tuning-matching circuit bridged by two short wires of the desired length to generate two resonant modes: one for proton MRI and the other for low-γ X-nuclear MRS imaging with a large difference in their Larmor frequencies at ultrahigh fields. The coil parameters for the desired coil size and resonant frequencies can be determined via numerical simulations based on LC circuit theory. We designed, constructed, and evaluated several prototype surface coils and quadrature array coils for 1H and 2H or 17O imaging, with small-sized (diameter ≤ 5 cm) coils evaluated using a 16.4 T animal scanner, and a large-sized (15 cm diameter) coil on a 7 T human scanner. All coils could be tuned/matched and driven in the single coil or array coil mode to the resonant frequencies of 1H (698 and 298 MHz), 2H (107 and 45.8 MHz), or 17O (94.7 and 40.4 MHz) for imaging measurements and evaluation at 16.4 and 7 T, respectively. The dual-frequency resonant coil or array provides adequate detection sensitivity for 1H MRI and excellent performance for low-γ X-nuclear MRS imaging applications, and excellent coil decoupling efficiency between the array coils at both resonant frequencies with an optimal geometric overlap. It provides a simple, cost-effective dual-frequency RF coil solution to perform low-γ X-nuclear MRS imaging for preclinical and human applications, especially at ultrahigh fields.
| Original language | English (US) |
|---|---|
| Article number | e4930 |
| Journal | NMR in biomedicine |
| Volume | 36 |
| Issue number | 8 |
| DOIs | |
| State | Published - Aug 2023 |
Bibliographical note
Funding Information:The authors thank Hannes M. Wiesner and Tao Wang for their generous help with the deuterium CSI experiments and CSI data processing. This work was supported by National Institutes of Health (NIH) under Grants R01 MH111413, R01 CA240953, U01 EB026978, R01 NS118330, S10 RR025031, P41 EB027061, and P30 NS076408.
Publisher Copyright:
© 2023 The Authors. NMR in Biomedicine published by John Wiley & Sons Ltd.
Keywords
- chemical shift imaging, dual-frequency resonant coil design
- low-γ X-nuclear MRS imaging
- proton MRI
- ultrahigh fields
Center for Magnetic Resonance Research (CMRR) tags
- BEMIT
- MRE
- P41
PubMed: MeSH publication types
- Journal Article
- Research Support, N.I.H., Extramural
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