Jörg Felder

Orcid: 0000-0001-6431-4322

According to our database1, Jörg Felder authored at least 14 papers between 2013 and 2024.

Collaborative distances:
  • Dijkstra number2 of five.
  • Erdős number3 of four.

Timeline

Legend:

Book 
In proceedings 
Article 
PhD thesis 
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Links

Online presence:

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Bibliography

2024
A Novel Circularly Polarised Butterfly RF Coil Concept for MRI.
IEEE Access, 2024

2023
Design of a Folded, Double-Tuned Loop Coil for ¹H/X-Nuclei MRI Applications.
IEEE Trans. Medical Imaging, May, 2023

Project-Oriented RF Coil Comparison and Optimization for Preclinical, Single-Voxel MR Spectroscopy of the Rat Visual Cortex at 9.4 T.
IEEE Access, 2023

2022
A Novel J-Shape Antenna Array for Simultaneous MR-PET or MR-SPECT Imaging.
IEEE Trans. Medical Imaging, 2022

Design and Comparison of Different Types of Dual-Frequency Matching Networks Used in Double-Tuned Coils for Multinuclear Magnetic Resonance Imaging and Spectroscopy.
IEEE Access, 2022

2021
Design and Construction of a PET-Compatible Double-Tuned <sup>1</sup>H/<sup>31</sup>P MR Head Coil.
IEEE Trans. Medical Imaging, 2021

The traveling heads 2.0: Multicenter reproducibility of quantitative imaging methods at 7 Tesla.
NeuroImage, 2021

2020
Application of Evolution Strategies to the Design of SAR Efficient Parallel Transmit Multi-Spoke Pulses for Ultra-High Field MRI.
IEEE Trans. Medical Imaging, 2020

2018
An EM Simulation-Based Design Flow for Custom-Built MR Coils Incorporating Signal and Noise.
IEEE Trans. Medical Imaging, 2018

Design of a Quadrature 1H/31P Coil Using Bent Dipole Antenna and Four-Channel Loop at 3T MRI.
IEEE Trans. Medical Imaging, 2018

Signal Loss Compensation of RF Crossbar Switch Matrix System in Ultra-High Field MRI.
IEEE Trans. Biomed. Circuits Syst., 2018

2014
Mapping tissue sodium concentration in the human brain: A comparison of MR sequences at 9.4 Tesla.
NeuroImage, 2014

Simultaneous EEG-fMRI acquisition at low, high and ultra-high magnetic fields up to 9.4 T: Perspectives and challenges.
NeuroImage, 2014

2013
EEG acquisition in ultra-high static magnetic fields up to 9.4 T.
NeuroImage, 2013


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