With Transmit SENSE, we demonstrate the feasibility of uniformly exciting a volume such as the human brain at 7T through the use of an original minimalist transmit k-space coverage, referred to as "k(T) -points." Radio-frequency energy is deposited only at a limited number of k-space locations in the vicinity of the center to counteract transmit sensitivity inhomogeneities. The resulting nonselective pulses are short and need little energy compared to adiabatic or other B 1+-robust pulses available in the literature, making them good candidates for short-repetition time 3D sequences at high field. Experimental verification was performed on three human volunteers at 7T by means of an 8-channel transmit array system. On average, whereas the s...
<div><p>Parallel transmission (pTx) technology, despite its great potential to mitigate the transmit...
Parallel transmitter techniques are a promising approach for reducing transmitter B 1 inhomogenei...
Parallel transmission (pTx) technology, despite its great potential to mitigate the transmit field i...
This article presents a small-flip-angle, three-dimensional tailored RF pulse that excites thin slic...
Parallel transmitter techniques are a promising approach for reducing transmitter B1 inhomogeneity d...
T2-weigthed sequences are particularly sensitive to the RF field inhomogeneity problem due to the er...
Brain images acquired at 3T often display central brightening with spatially varying tissue contrast...
Purpose At high magnetic field strengths (B ≥ 3 T), the shorter radiofrequency wavelength produces a...
Purpose We present a time-efficient water-selective, parallel transmit RF excitation pulse design f...
PURPOSE: At high magnetic field strengths (B0 ≥ 3 T), the shorter radiofrequency wavelength produces...
Adiabatic RF pulses are useful pulses for inhomogeneous B1 fields caused by surface RF coils, howeve...
International audienceA new pulse technique for counteracting RF inhomogeneity at high fields is rep...
The focus of this thesis lies on the development, and implementation, of parallel transmission (pTx)...
This work presents a novel approach for designing RF pulses to achieve excellent whole-brain excitat...
Parallel transmission (pTx) technology, despite its great potential to mitigate the transmit field i...
<div><p>Parallel transmission (pTx) technology, despite its great potential to mitigate the transmit...
Parallel transmitter techniques are a promising approach for reducing transmitter B 1 inhomogenei...
Parallel transmission (pTx) technology, despite its great potential to mitigate the transmit field i...
This article presents a small-flip-angle, three-dimensional tailored RF pulse that excites thin slic...
Parallel transmitter techniques are a promising approach for reducing transmitter B1 inhomogeneity d...
T2-weigthed sequences are particularly sensitive to the RF field inhomogeneity problem due to the er...
Brain images acquired at 3T often display central brightening with spatially varying tissue contrast...
Purpose At high magnetic field strengths (B ≥ 3 T), the shorter radiofrequency wavelength produces a...
Purpose We present a time-efficient water-selective, parallel transmit RF excitation pulse design f...
PURPOSE: At high magnetic field strengths (B0 ≥ 3 T), the shorter radiofrequency wavelength produces...
Adiabatic RF pulses are useful pulses for inhomogeneous B1 fields caused by surface RF coils, howeve...
International audienceA new pulse technique for counteracting RF inhomogeneity at high fields is rep...
The focus of this thesis lies on the development, and implementation, of parallel transmission (pTx)...
This work presents a novel approach for designing RF pulses to achieve excellent whole-brain excitat...
Parallel transmission (pTx) technology, despite its great potential to mitigate the transmit field i...
<div><p>Parallel transmission (pTx) technology, despite its great potential to mitigate the transmit...
Parallel transmitter techniques are a promising approach for reducing transmitter B 1 inhomogenei...
Parallel transmission (pTx) technology, despite its great potential to mitigate the transmit field i...