Sort by
Refine Your Search
-
Category
-
Country
-
Employer
- CNRS
- Monash University
- Delft University of Technology (TU Delft)
- HFML-FELIX
- European Magnetism Association EMA
- Forschungszentrum Jülich
- The University of Manchester
- DIFFER
- Fundación IMDEA Nanociencia
- ICN2
- Institute of Biochemistry and Biophysics Polish Academy of Sciences
- NTNU - Norwegian University of Science and Technology
- University of Basel
- University of Birmingham
- University of East Anglia
- University of Exeter
- University of North Carolina at Chapel Hill
- Adelaide University
- Amsterdam UMC
- CEA Paris-Saclay
- CEA-IRIG
- Ecole Normale Supérieure
- Eindhoven University of Technology (TU/e)
- German Cancer Research Center (DKFZ) Heidelberg •
- Imperial College London
- Inria, the French national research institute for the digital sciences
- KU LEUVEN
- Kaunas University of Technology
- Leipzig University - Guinevere Mathies
- Lunds universitet
- Max Planck Institute for Human Cognitive and Brain Sciences •
- Max Planck Institute for Solar System Research
- NTNU Norwegian University of Science and Technology
- Nantes Université
- Queensland University of Technology
- Technical University of Denmark (DTU)
- Technische Universität Dresden (TU Dresden)
- UNIS
- UNIVERSITY OF VIENNA
- Umeå University
- University of Bremen
- University of Copenhagen
- University of Iceland
- University of Liverpool
- University of Lund
- University of Nottingham
- University of Otago
- University of Pittsburgh
- University of Regensburg
- University of Sheffield
- University of Toulouse
- University of Twente
- University of Twente (UT)
- University of Vienna
- University of Warwick
- University of West Bohemia
- 46 more »
- « less
-
Field
-
for examining and imaging the magnetic fields from exotic conducting materials (e.g. superconductors, topological insulators), performing high bandwidth and high sensitivity vector magnetic sensing and developing
-
of researchers with complementary expertise in molecular biology, oncology, medical radiation physics, radionuclide therapy, radiochemistry, magnetic resonance imaging (MRI), radiation dosimetry, and image
-
magnetic resonance imaging (Flow MRI) is a powerful and non-invasive imaging technique that measures blood flow in time and space. It provides vital insights into key metrics for cardiovascular disease
-
magnetic field inhomogeneities, resulting in geometric distortion and signal loss in the images. The aim of the project is to investigate the potential of using Implicit Neural Representation (INR), a class
-
activity and connectivity between nerve cells. MRI measurements can be affected by magnetic field inhomogeneities, resulting in geometric distortion and signal loss in the images. The aim of the project is
-
physics, radionuclide therapy, radiochemistry, magnetic resonance imaging (MRI), radiation dosimetry, and image analysis. We offer Lund University is a public authority, which means that employees get
-
-based additive manufacturing (MEX AM) to print both soft and hard structural or electronic materials (e.g. composites with conductive, ferroelectric, dielectric, magnetic and other performance-enhancing
-
insulators and Weyl semimetals. The former favours quantum states of matter (e.g. excitonic superfluidity, quantum magnetism, superconductivity), while the latter makes their optical and transport properties
-
This PhD redefines electromagnetic sensing by moving beyond magnetic permeability-dominated approaches to establish a conductivity-driven eddy-current framework for tracking microstructural
-
on silicon nitride ribbon torsional resonators coupled directly via magnetic flux to a superconducting qubit. Building on the exciting flux-coupling concept pioneered in my group, you will bring mechanical