Dr.-Ing. Fabian Mohn

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: fabian.mohn(at)tuhh.de
ORCID:  https://orcid.org/0000-0002-9151-9929

Research Interests

  • (arbitrary waveform) Magnetic Particle Imaging
  • inductive sensors, filters and resonant transformers
  • circuit design, impedance matching
  • Magneto Mechanical Resonators (MMRs)

Curriculum Vitae

Fabian Mohn studied Electrical Engineering at the Hamburg University of Technology (TUHH) and in cooperation with the Philips Research Laboratories Hamburg, he received his master's degree in 2018 on the Analysis and Optimization of the Signal-to-Noise Ratio for Receive Arrays in Magnetic Resonance Imaging. He joined the group of Tobias Knopp for Biomedical Imaging at the University Medical Center Hamburg-Eppendorf (UKE) and the Hamburg University of Technology in 2020 as a PhD student and finished his PhD in 2024 on the topic Instrumentation, Sequences and Applications for Magnetic Particles in Imaging and Spectroscopy.

Journal Publications

[164758]
Title: Empirical Study of Magnet Distance on Magneto-Mechanical Resonance Frequency.
Written by: T. Knopp, F. Mohn, F. Foerger, F. Thieben, N. Hackelberg, J. Faltinath, A. Tsanda, M. Boberg, and M. Möddel
in: <em>Current Directions in Biomedical Engineering</em>. 12 (2024).
Volume: <strong>10</strong>. Number: (4),
on pages: 377-380
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DOI: http://dx.doi.org/10.1515/cdbme-2024-2092
URL: https://www.degruyterbrill.com/document/doi/10.1515/cdbme-2024-2092/html
ARXIVID:
PMID:

[www]

Note: inproceedings, mmr

Abstract: Determining the position and orientation of a medical instrument is essential for accurate procedures in endoscopy, surgery, and vascular interventions. Recently, a novel sensor based on torsional pendulum-like magneto-mechanical motion has been proposed. This sensor is passive, wireless and inductively coupled to a transmit-receive coil array. This setup allows the determination of all 6 degrees of freedom using the characteristic resonance of the sensor. Additional physical quantities such as temperature and pressure can be measured based on the frequency of the sensor, which mainly depends on the distance between the two involved permanent magnets. In this study, we analyze a sensor composed of two magnetic cylinders with variable magnet-to-magnet distance and a basic physical model based on a dipole assumption. Experimental analysis of the resonance frequency and comparison with the model values show both qualitative and quantitative agreement with an average relative error of only 0.8 %. This validates the implemented model and shows the suitability of our magnetic-mechanical resonator made from cylindrical permanent magnets for sensing applications.

Conference Proceedings

[164758]
Title: Empirical Study of Magnet Distance on Magneto-Mechanical Resonance Frequency.
Written by: T. Knopp, F. Mohn, F. Foerger, F. Thieben, N. Hackelberg, J. Faltinath, A. Tsanda, M. Boberg, and M. Möddel
in: <em>Current Directions in Biomedical Engineering</em>. 12 (2024).
Volume: <strong>10</strong>. Number: (4),
on pages: 377-380
Chapter:
Editor:
Publisher:
Series:
Address:
Edition:
ISBN:
how published:
Organization:
School:
Institution:
Type:
DOI: http://dx.doi.org/10.1515/cdbme-2024-2092
URL: https://www.degruyterbrill.com/document/doi/10.1515/cdbme-2024-2092/html
ARXIVID:
PMID:

[www] [BibTex]

Note: inproceedings, mmr

Abstract: Determining the position and orientation of a medical instrument is essential for accurate procedures in endoscopy, surgery, and vascular interventions. Recently, a novel sensor based on torsional pendulum-like magneto-mechanical motion has been proposed. This sensor is passive, wireless and inductively coupled to a transmit-receive coil array. This setup allows the determination of all 6 degrees of freedom using the characteristic resonance of the sensor. Additional physical quantities such as temperature and pressure can be measured based on the frequency of the sensor, which mainly depends on the distance between the two involved permanent magnets. In this study, we analyze a sensor composed of two magnetic cylinders with variable magnet-to-magnet distance and a basic physical model based on a dipole assumption. Experimental analysis of the resonance frequency and comparison with the model values show both qualitative and quantitative agreement with an average relative error of only 0.8 %. This validates the implemented model and shows the suitability of our magnetic-mechanical resonator made from cylindrical permanent magnets for sensing applications.