Please use this identifier to cite or link to this item: http://repository.aaup.edu/jspui/handle/123456789/3250
Title: Dual- Resonant RF Coil for Proton and Phosphorus Imaging at 7 Tesla MRI
Authors: Salama, Sanaa$AAUP$Palestinian
Abuelhaija, Ashraf$Other$Other
Saleh, Gameel$Other$Other
Nashwan, Osama$Other$Other
Issa, Samer$Other$Other
Awada, Emad$Other$Other
Keywords: dual- resonant meandered coil
LC networks
magnetic resonance imaging
radio frequency coil
Issue Date: 10-Apr-2025
Publisher: International Journal of Imaging Systems and Technology
Abstract: Magnetic resonance spectroscopy (MRS) provides a non- invasive method for examining metabolic alterations associated with linked to diseases. While 1H- based MRS is commonly employed, its effectiveness is often limited by signal interference from water, reducing the accuracy of metabolite differentiation. In contrast, X- nuclei MRS leverages the broader chemical shift dis persion of non- hydrogen nuclei to enhance the ability to distinguish between metabolites. This article presents the design and analysis of a dual- resonant meandered coil for 7 Tesla magnetic resonance imaging (MRI), to simultaneously help in image hydrogen protons (1H) and detect Phosphorus (31P) atomic nuclei at 298 MHz and 120.6 MHz, respectively. Both single- channel and four- channel configurations were designed and analyzed. The single- channel coil integrates an LC network for dual reso nance, achieving excellent impedance matching (S11 < −10 dB) and a homogeneous magnetic field distribution within the region of interest. A transmission- line- based matching network was implemented to optimize performance at both frequencies. The four- channel coil was simulated with CST Microwave Studio and experimentally validated. Simulations demonstrated imped ance matching and minimal mutual coupling of −38 dB at 298 MHz and −24 dB at 120.6 MHz. The measured S- parameters con firmed these results, showing high decoupling and robust performance across all channels. The prototype featured integrated LC networks and optimized meander structures, ensuring efficient power transmission and uniform field distribution. This work highlights the effectiveness of the proposed dual- resonant coil designs for MRS applications, offering promising potential for advanced clinical diagnostics.
URI: http://repository.aaup.edu/jspui/handle/123456789/3250
Appears in Collections:Faculty & Staff Scientific Research publications

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