Jonas Faltinath, M.Sc.

Universitätsklinikum Hamburg-Eppendorf (UKE)
Sektion für Biomedizinische Bildgebung
Lottestraße 55
2ter Stock, Raum 203
22529 Hamburg
- Postanschrift -

Technische Universität Hamburg (TUHH)
Institut für Biomedizinische Bildgebung
Gebäude E, Raum 4.044
Am Schwarzenberg-Campus 3
21073 Hamburg

Tel.:      040 / 7410 25812
E-Mail: j.faltinath@uke.de
E-Mail: jonas.faltinath@tuhh.de

 

 

Research Interests

  • Tomographic Imaging
  • Magnetic Particle Imaging

 

Curriculum Vitae

Jonas Faltinath is a PhD student in the group of Prof. Tobias Knopp for Biomedical Imaging at the University Medical Center Hamburg-Eppendorf and the Hamburg University of Technology. During his study at the University of Hamburg, he worked mainly in the field of quantum optics resulting in the Master's thesis "Strongly Correlated Fermi Gases in Two and Three Dimensions" at the Institute of Laserphysics. For this thesis that presents a flexible set-up used for trapping and cooling of an ultracold quantum gas in different dimensions, he was awarded with the "Otto Stern-Preis". After that, he performed a one-year research stay at the École Polytechnique Fédérale de Lausanne (EPFL) in Switzerland investigating an optical and non-destructive tomographic imaging modality on a quantum gas inside a high-finesse cavity. For his PhD, he is interested in the further development of magnetic particle imaging associated research.

Journal Publications

[191927]
Title: Design and Optimization of a Magnetic Field Generator for Magnetic Particle Imaging with Soft Magnetic Materials.
Written by: F. Foerger, M. Boberg, J. Faltinath, T. Knopp, M. Möddel
in: <em>Advanced Intellegent Systems</em>. (2024).
Volume: <strong>6</strong>. Number: (11),
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DOI: https://doi.org/10.1002/aisy.202400017
URL: https://advanced.onlinelibrary.wiley.com/doi/full/10.1002/aisy.202400017
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Note: article

Abstract: Magnetic field generators are a key component of Magnetic Particle Imaging (MPI) systems, and their power consumption is a major obstacle on the path to human-sized scanners. Despite their importance, a focused discussion of these generators is rare, and a comprehensive description of the design process is currently lacking. This work presents a methodology for the design and optimization of selection field generators operating with soft magnetic materials outside the linear regime in the context of MPI. Key elements are a mathematical model of magnetic field generators, a formalism for defining field sequences, and a relationship between power consumption and field sequence. These are used to define the design space of a field generator given its system requirements and constraints. The design process is then formulated as an optimization problem. Subsequently, this methodology is then utilized to design a new magnetic field generator specifically for cerebral imaging studies. The optimization result outperforms our existing MPI field generator in terms of power consumption and field of view size, providing a proof-of-concept for the entire methodology. As the approach is very general, it can be extended beyond the MPI context to other areas such as magnetic manipulation of medical devices and micro-robotics.