One of the main goals of ultra-high field MRI is to increase the spatial resolution reached in structural and functional images. Here, the possibility to obtain in vivo images of the human brain with voxel volumes below 0.02 mm3 is shown at 9.4 T. To optimize SNR and suppress ringing artifacts, an acquisition-weighted 3D gradient-echo sequence is used, which acquires more averages in the center than in the outer regions of k-space. The weighting function is adjusted to avoid losses in spatial resolution and scan duration compared to a conventional experiment with an equal number of scans and otherwise identical parameters. Spatial resolution and SNR of the weighted sequence are compared to conventionally acquired images by means of phantom ...
One of the major advances in magnetic resonance imaging (MRI) is continuous increase of the static m...
Abstract: Magnetic resonance imaging (MRI) at 7T provides higher signal-to-noise ratio (SNR) which e...
The chief advantages of using high-field MRI for neuroscientific research are the improvements in sp...
One of the main goals of ultra-high field MRI is to increase the spatial resolution reached in struc...
Imaging with high spatial resolutions suffers from low SNR, long durations and high sensitivity to a...
Susceptibility weighted imaging benefits from ultra-high field in terms of increased contrast-to-noi...
We present high-resolution in vivo anatomical scans with 3D whole-brain coverage and an isotropic re...
Purpose/Introduction: One of the main goals at ultra-high magnetic fields is to take advantage of th...
This work is focused on developing methods for neuroimaging in vivo at 7.0 T with high resolution an...
Purpose Relaxation times, transmit homogeneity, signal-to-noise ratio (SNR) and parallel imaging g-f...
Human MRI scanners at ultra-high magnetic field strengths of 7 T and higher are increasingly availab...
We present an ultrahigh resolution in vivo human brain magnetic resonance imaging (MRI) dataset. It ...
The main goal of this methodological thesis was to present optimised magnetic resonance imaging (MRI...
Human MRI scanners at ultra-high magnetic field strengths of 7 T and higher are increasingly availab...
Human MRI scanners at ultra-high magnetic field strengths of 7 T and higher are increasingly availab...
One of the major advances in magnetic resonance imaging (MRI) is continuous increase of the static m...
Abstract: Magnetic resonance imaging (MRI) at 7T provides higher signal-to-noise ratio (SNR) which e...
The chief advantages of using high-field MRI for neuroscientific research are the improvements in sp...
One of the main goals of ultra-high field MRI is to increase the spatial resolution reached in struc...
Imaging with high spatial resolutions suffers from low SNR, long durations and high sensitivity to a...
Susceptibility weighted imaging benefits from ultra-high field in terms of increased contrast-to-noi...
We present high-resolution in vivo anatomical scans with 3D whole-brain coverage and an isotropic re...
Purpose/Introduction: One of the main goals at ultra-high magnetic fields is to take advantage of th...
This work is focused on developing methods for neuroimaging in vivo at 7.0 T with high resolution an...
Purpose Relaxation times, transmit homogeneity, signal-to-noise ratio (SNR) and parallel imaging g-f...
Human MRI scanners at ultra-high magnetic field strengths of 7 T and higher are increasingly availab...
We present an ultrahigh resolution in vivo human brain magnetic resonance imaging (MRI) dataset. It ...
The main goal of this methodological thesis was to present optimised magnetic resonance imaging (MRI...
Human MRI scanners at ultra-high magnetic field strengths of 7 T and higher are increasingly availab...
Human MRI scanners at ultra-high magnetic field strengths of 7 T and higher are increasingly availab...
One of the major advances in magnetic resonance imaging (MRI) is continuous increase of the static m...
Abstract: Magnetic resonance imaging (MRI) at 7T provides higher signal-to-noise ratio (SNR) which e...
The chief advantages of using high-field MRI for neuroscientific research are the improvements in sp...