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Friedrich-Alexander-Universität Chair of Electron Devices
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Printable soft magnetic polymers for power electronics

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  • Silicon Semiconductor Technology
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  • Anorganische Dünnschichtelektronik
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  • Other Projects
    • Herstellung und Charakterisierung von Heterostrukturen aus 2D Materialien
    • Entwicklung eines PDMS-basierten Mikrofluidiksystems
    • Erforschung der Oberflächenpräparation und der Rückgewinnung von Aluminiumnitrid-Substraten
    • Growth and stability of anisotropic nanoparticles in liquids
    • Leistungszentrum Elektroniksysteme (LZE), Teilprojekt 1: "Impedanzmessplatz für DC/DC-Wandler"
    • Leistungszentrum Elektroniksysteme (LZE), Teilprojekt 2: "Robuste Gestaltung induktiver Energieüberträger für bewegte Anwendungen"
    • Printable soft magnetic polymers for power electronics
    • Stability Under Process Variability for Advanced Interconnects and Devices Beyond 7 nm node
    • LightWave: High Performance Computing of Optical Wave
    • Intelligentes Leistungsmodul

Printable soft magnetic polymers for power electronics

Printable soft magnetic polymers for power electronics

(Own Funds)

Overall project:
Project leader: Lothar Frey
Project members: Tobias Stolzke
Start date: 1. January 2016
End date: 31. August 2021
Acronym:
Funding source:
URL:

Abstract

This research project is investigating the application of Soft Magnetic Compounds (SMC) in power electronic systems. These materials got the possibility to form free moldable core geometries, similar to the injection molding method. Thereby any available space for complex inductive components can be used. The work involves the fabrication of SMC-ringcores consisting of different soft magnetic powders (e. g. Manganese-Zinc-Ferrite or Ferrite-Copper-Niobium-Silicium-Boron) with variable main particle sizes. Furthermore the influence of the main particle size and their size distribution at the magnetic properties will be investigated. A new measurement System is designed and constructed in order to characterize the ringcores with high precision in dependency of the frequency, e. g. core losses, permeability and saturation. Based on the measurement results the theoretical foundations have to be verified, simulation models forecasting the permeability of SMC´s will be constructed and new fields of applications have to be developed. 

 

Publications

  • Stolzke T., Dirnecker T., Schwarz J., Frey L.:
    Investigation of magnetic properties from a manganese–zinc–ferrite polymer bonded material
    In: International Journal of Applied Electromagnetics and Mechanics Pre-press (2018), p. 1-8
    ISSN: 1383-5416
    DOI: 10.3233/JAE-171244

Chair of Electron Devices
FAU Erlangen-Nürnberg

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