A capacitive impedance metasurface combined with a transceiver coil to improve the radio frequency magnetic field for 1.5T magnetic resonance imaging applications is presented. The novel transceiver provides localized enhancement in magnetic flux density when compared to a transceiver coil alone by incorporating an electrically small metasurface using an interdigital capacitance approach. Full field simulations employing the metasurface show a significant improvement in magnetic flux density inside a homogeneous dielectric phantom, which is also shown to perform well for a range of depths into the phantom. The concept was experimentally demonstrated through vector network analyzer measurements and images have been taken using a 1.5T MRI sca...
In this paper we propose the adoption of magnetic metasurfaces, whose response is opportunely contro...
Earlier work on RF metasurfaces for preclinical MRI has targeted applications such as whole‐body ima...
We experimentally demonstrate how to substantially improve the performance of a 1.5 T magnetic reson...
A metasurface combined with a transceiver coil to improve the radio frequency magnetic field for 1.5...
This paper investigates the use of High Impedance Surfaces (HIS) to enhance the magnetic near-field ...
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 ...
Magnetic resonance imaging (MRI) is the cornerstone diagnostics technique for medicine, biology, and...
A numerical study of a radio frequency transceiver coil incorporating a capacitive metasurface is in...
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...
This paper presents a novel design of a High Impedance Surface (HIS) to improve the magnetic field ...
\u3cp\u3eIt is revealed that the unique properties of ultrathin metasurface resonators can improve m...
University of Minnesota Ph.D. dissertation. October 2018. Major: Electrical Engineering. Advisor: An...
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...
Earlier work on RF metasurfaces for preclinical MRI has targeted applications such as whole‐body ima...
We experimentally demonstrate how to substantially improve the performance of a 1.5 T magnetic reson...
A metasurface combined with a transceiver coil to improve the radio frequency magnetic field for 1.5...
This paper investigates the use of High Impedance Surfaces (HIS) to enhance the magnetic near-field ...
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 ...
Magnetic resonance imaging (MRI) is the cornerstone diagnostics technique for medicine, biology, and...
A numerical study of a radio frequency transceiver coil incorporating a capacitive metasurface is in...
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...
This paper presents a novel design of a High Impedance Surface (HIS) to improve the magnetic field ...
\u3cp\u3eIt is revealed that the unique properties of ultrathin metasurface resonators can improve m...
University of Minnesota Ph.D. dissertation. October 2018. Major: Electrical Engineering. Advisor: An...
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...
Earlier work on RF metasurfaces for preclinical MRI has targeted applications such as whole‐body ima...
We experimentally demonstrate how to substantially improve the performance of a 1.5 T magnetic reson...