Dr. rer. nat. Martin Möddel (Hofmann)

Universitätsklinikum Hamburg-Eppendorf (UKE)
Sektion für Biomedizinische Bildgebung
Lottestraße 55
2ter Stock, Raum 212
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 56309
E-Mail: m.hofmann(at)uke.de
E-Mail: martin.hofmann(at)tuhh.de
ORCID: https://orcid.org/0000-0002-4737-7863

Research Interests

My research focus is magnetic particle imaging, where I study a number problems such as:

  • Multi-contrast imaging
  • Image reconstruction
  • Signal processing

Curriculum Vitae

Martin Möddel is a postdoc in the group of Tobias Knopp for experimental Biomedical Imaging at the University Medical Center Hamburg-Eppendorf and the Hamburg University of Technology. He received his PhD in physics from the Universität Siegen in 2014 on Characterizing quantum correlations: the genuine multiparticle negativity as entanglement monotone. Prior to his PhD in between 2005-2011 he studied physics at the Universität Leipzig, where he recieved his Diplom On the costratified Hilbert space structure of a lattice gauge model with semi-simple gauge group.

Journal Publications

[120377]
Title: Stroke Detection using Magnetic Particle Imaging: A Phantom Study using a Human-sized Brain Phantom. <em>9th International Workshop on Magnetic Particle Imaging (IWMPI 2019)</em>
Written by: F. Werner, M. Gräser, F. Thieben, P Szwargulski, N. Gdaniec, M. Boberg, F. Griese, M. Möddel, P. Ludewig, D. van de Ven, O. M. Weber, O. Woywode, B. Gleich, and T. Knopp
in: (2019).
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on pages: 141-142
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[BibTex]

Note: inproceedings, brainimager

Abstract: The determination of brain perfusion is essential for rapid diagnosis and therapy of vascular diseases such as an acute stroke. Due to the potential risk of restenosis, the patient must be closely monitored the days after treatment. Recently, the first human-sized magnetic particle imager for brain applications has been introduced. In comparison to conventional techniques, the technical realization of the device allows for the use on intensive care units making repetitive monitoring possible. In this work, a human-sized brain phantom was designed and measurements were performed to prove the suitability of the device for visualizing perfusion deficits.

[120377]
Title: Stroke Detection using Magnetic Particle Imaging: A Phantom Study using a Human-sized Brain Phantom. <em>9th International Workshop on Magnetic Particle Imaging (IWMPI 2019)</em>
Written by: F. Werner, M. Gräser, F. Thieben, P Szwargulski, N. Gdaniec, M. Boberg, F. Griese, M. Möddel, P. Ludewig, D. van de Ven, O. M. Weber, O. Woywode, B. Gleich, and T. Knopp
in: (2019).
Volume: Number:
on pages: 141-142
Chapter:
Editor:
Publisher:
Series:
Address:
Edition:
ISBN:
how published:
Organization:
School:
Institution:
Type:
DOI:
URL:
ARXIVID:
PMID:

[BibTex]

Note: inproceedings, brainimager

Abstract: The determination of brain perfusion is essential for rapid diagnosis and therapy of vascular diseases such as an acute stroke. Due to the potential risk of restenosis, the patient must be closely monitored the days after treatment. Recently, the first human-sized magnetic particle imager for brain applications has been introduced. In comparison to conventional techniques, the technical realization of the device allows for the use on intensive care units making repetitive monitoring possible. In this work, a human-sized brain phantom was designed and measurements were performed to prove the suitability of the device for visualizing perfusion deficits.

Conference Proceedings

[120377]
Title: Stroke Detection using Magnetic Particle Imaging: A Phantom Study using a Human-sized Brain Phantom. <em>9th International Workshop on Magnetic Particle Imaging (IWMPI 2019)</em>
Written by: F. Werner, M. Gräser, F. Thieben, P Szwargulski, N. Gdaniec, M. Boberg, F. Griese, M. Möddel, P. Ludewig, D. van de Ven, O. M. Weber, O. Woywode, B. Gleich, and T. Knopp
in: (2019).
Volume: Number:
on pages: 141-142
Chapter:
Editor:
Publisher:
Series:
Address:
Edition:
ISBN:
how published:
Organization:
School:
Institution:
Type:
DOI:
URL:
ARXIVID:
PMID:

[BibTex]

Note: inproceedings, brainimager

Abstract: The determination of brain perfusion is essential for rapid diagnosis and therapy of vascular diseases such as an acute stroke. Due to the potential risk of restenosis, the patient must be closely monitored the days after treatment. Recently, the first human-sized magnetic particle imager for brain applications has been introduced. In comparison to conventional techniques, the technical realization of the device allows for the use on intensive care units making repetitive monitoring possible. In this work, a human-sized brain phantom was designed and measurements were performed to prove the suitability of the device for visualizing perfusion deficits.

[120377]
Title: Stroke Detection using Magnetic Particle Imaging: A Phantom Study using a Human-sized Brain Phantom. <em>9th International Workshop on Magnetic Particle Imaging (IWMPI 2019)</em>
Written by: F. Werner, M. Gräser, F. Thieben, P Szwargulski, N. Gdaniec, M. Boberg, F. Griese, M. Möddel, P. Ludewig, D. van de Ven, O. M. Weber, O. Woywode, B. Gleich, and T. Knopp
in: (2019).
Volume: Number:
on pages: 141-142
Chapter:
Editor:
Publisher:
Series:
Address:
Edition:
ISBN:
how published:
Organization:
School:
Institution:
Type:
DOI:
URL:
ARXIVID:
PMID:

[BibTex]

Note: inproceedings, brainimager

Abstract: The determination of brain perfusion is essential for rapid diagnosis and therapy of vascular diseases such as an acute stroke. Due to the potential risk of restenosis, the patient must be closely monitored the days after treatment. Recently, the first human-sized magnetic particle imager for brain applications has been introduced. In comparison to conventional techniques, the technical realization of the device allows for the use on intensive care units making repetitive monitoring possible. In this work, a human-sized brain phantom was designed and measurements were performed to prove the suitability of the device for visualizing perfusion deficits.