In this work, we experimentally demonstrate an increase in the local transmit efficiency of a 1.5 T MRI scanner by using a metasurface formed by an array of brass wires embedded in a high permittivity low loss medium. Placement of such a structure inside the scanner results in strong coupling of the radiofrequency field produced by the body coil with the lowest frequency electromagnetic eigenmode of the metasurface. This leads to spatial redistribution of the near fields with enhancement of the local magnetic field and an increase in the transmit efficiency per square root maximum specific absorption rate in the region-of-interest. We have investigated this structure in vivo and achieved a factor of 3.3 enhancement in the local radiofrequen...
In this paper we propose the adoption of magnetic metasurfaces, whose response is opportunely contro...
University of Minnesota Ph.D. dissertation. October 2018. Major: Electrical Engineering. Advisor: An...
We present an approach to enhance microwave brain imaging with an innovative metamaterial (MM) plana...
In this work, we experimentally demonstrate an increase in the local transmit efficiency of a 1.5 T ...
In this work, we experimentally demonstrate an increase in the local transmit efficiency of a 1.5 T ...
We reveal that the unique properties of ultrathin metasurface resonators can improve dramatically m...
It is revealed that the unique properties of ultrathin metasurface resonators can improve magnetic r...
We experimentally demonstrate how to substantially improve the performance of a 1.5 T magnetic reson...
\u3cp\u3eIt is revealed that the unique properties of ultrathin metasurface resonators can improve m...
A capacitive impedance metasurface combined with a transceiver coil to improve the radio frequency m...
A metasurface combined with a transceiver coil to improve the radio frequency magnetic field for 1.5...
A numerical study of a radio frequency transceiver coil incorporating a capacitive metasurface is in...
International audienceEarlier work on radiofrequency (RF) metasurfaces for preclinical MRI has targe...
Magnetic resonance imaging (MRI) is the cornerstone diagnostics technique for medicine, biology, and...
Metasurfaces represent a new paradigm in artificial subwavelength structures due to their potential...
In this paper we propose the adoption of magnetic metasurfaces, whose response is opportunely contro...
University of Minnesota Ph.D. dissertation. October 2018. Major: Electrical Engineering. Advisor: An...
We present an approach to enhance microwave brain imaging with an innovative metamaterial (MM) plana...
In this work, we experimentally demonstrate an increase in the local transmit efficiency of a 1.5 T ...
In this work, we experimentally demonstrate an increase in the local transmit efficiency of a 1.5 T ...
We reveal that the unique properties of ultrathin metasurface resonators can improve dramatically m...
It is revealed that the unique properties of ultrathin metasurface resonators can improve magnetic r...
We experimentally demonstrate how to substantially improve the performance of a 1.5 T magnetic reson...
\u3cp\u3eIt is revealed that the unique properties of ultrathin metasurface resonators can improve m...
A capacitive impedance metasurface combined with a transceiver coil to improve the radio frequency m...
A metasurface combined with a transceiver coil to improve the radio frequency magnetic field for 1.5...
A numerical study of a radio frequency transceiver coil incorporating a capacitive metasurface is in...
International audienceEarlier work on radiofrequency (RF) metasurfaces for preclinical MRI has targe...
Magnetic resonance imaging (MRI) is the cornerstone diagnostics technique for medicine, biology, and...
Metasurfaces represent a new paradigm in artificial subwavelength structures due to their potential...
In this paper we propose the adoption of magnetic metasurfaces, whose response is opportunely contro...
University of Minnesota Ph.D. dissertation. October 2018. Major: Electrical Engineering. Advisor: An...
We present an approach to enhance microwave brain imaging with an innovative metamaterial (MM) plana...