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Updated: Sep 26, 2026

Fabrication and Characterization of Superconducting Resonators
Published on: May 21, 2016
Optimal Transmission Performance of Quadrature Wireless Resonators at 3 T
Leila Sharipova1, Dmitrii Tikhonenko2, Christophe Vilmen2
1School of Physics and Engineering, ITMO University, Saint Petersburg, Russian Federation.
Purpose:
To demonstrate a method for optimizing the efficiency of wireless resonators using tailored excitation from a dual-transmit birdcage coil (BC), and to present the design and experimental investigation of a quadrature resonator for 3 T breast MRI application.
Methods:
A double-mode quadrature resonator was designed to enhance both orthogonal components of the field in a 3 T BC. Flip-angle maps measurements were performed on phantom to validate the predicted transmit efficiency gains. Numerical simulations were performed on a human voxel model to demonstrate the ability to optimize the field and SAR metrics.
Results:
Experiments confirmed that each linear polarization was enhanced by the resonator, yielding a 4.5-fold improvement in the transmit efficiency compared with the reference BC under conventional circularly polarized (CP) excitation. The optimal excitation was derived and validated experimentally, leading to an additional 2% increase in transmit efficiency. Simulations revealed that the resonator provided a 5.9-fold (left breast) and 5.2-fold (right breast) improvement in SAR efficiency under conventional CP excitation. Tailored excitations further increased SAR efficiency by 15% (left breast) and 31% (right breast), approaching a 7-fold improvement compared to the reference BC.
Conclusion:
A double-mode quadrature resonator was demonstrated for 3 T MRI. Combined with dual-transmit BC, it enabled focusing and significantly improved transmit and SAR efficiency. Our analytical model allowed the derivation of tailored BC excitation to approach the theoretical performance limit of wireless resonators.
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