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Friedrich-Alexander-Universität Chair of Electron Devices
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    • Silicon Semiconductor Technology
      • Realisierung von Koppelkondensatoren für Betriebsspannungen über 1200V durch Integration von Parallelwiderständen
      • Hybrid polymer based Bragg grating sensors – Fundamental investigations and application
      • A Synergetic Training Network on Energy beam Processing: from Modelling to Industrial Applications
      • Atomic layer deposition of dopant source layers for semiconductor doping – Characterization and modelling of drive-in processes
    • Wide-Bandgap Devices
      • Untersuchungen zur Leistungsdichte und Effizienz eines isolierenden DC/DC-Wandlers in GaN-Technologie
      • Dynamic Characterization of Molded Devices and Fundamental Investigations on Reliability
      • Charge compensation in 4H silicon carbide – Simulation, modelling and experimental verification
      • SiC-BIFET: Untersuchungen zu bipolaren SiC-Feldeffekttransistoren für das Mittelspannungsnetz
      • Development of semiconductor sensors based on silicon carbide
      • Kristallzüchtung von Nitrid-Einkristallen mit hoher Reinheit
    • Anorganische Dünnschichtelektronik
      • GRK 1161: Disperse systems for electronic applications – subproject electron devices in a nano-crystalline matrix
      • Liquid-phase processing of silicon thin films and electron devices based on polysilane precursors
      • Thin-Film Transistors with Novel Architecture for RF Circuits and Systems
      • Engineering of Nanoelectronic Materials – B6 (Druckbare Elektronik)
      • Local leakage currents in nanoparticulate films
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      • Herstellung und Charakterisierung von Heterostrukturen aus 2D Materialien
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      • 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
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  4. LightWave: High Performance Computing of Optical Wave

LightWave: High Performance Computing of Optical Wave

In page navigation: Research
  • Silicon Semiconductor Technology
  • Wide-Bandgap Devices
  • Anorganic Thin Film Electronics
  • Anorganische Dünnschichtelektronik
  • Quantum Technologies
  • 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

LightWave: High Performance Computing of Optical Wave

LightWave: High Performance Computing of Optical Wave

(Third Party Funds Group – Sub project)

Overall project: The Bavarian Competence Network for Technical and Scientific High Performance Computing (KONWIHR)
Project leader: Christoph Pflaum
Project members: Christine Angelika Jandl, Kai Hertel
Start date: 1. April 2009
End date: 31. March 2011
Acronym: LightWave
Funding source: Bayerische Forschungsstiftung
URL:

Abstract

 

Optical technologies are one of the key technologies of the 21st century. The appli- cations of these technologies range from medicine to information and communica- tion technology and from environmental technology to manufacturing technology. The progress in these technologies often depends on the possibility to predict the behavior of light by simulations of optical waves. However Maxwell equations are very difficult to solve for such kind of applications. Since many wavelengt- hs of light have to be resolved by a fine discretization mesh, high performance computing is very important for research in advanced optical technologies. One aim of the project is to adapt a parallel code for solving Maxwell's equations to current high performance architecture of high performance computers in Er- langen and Munich. This parallel code is based on the library StaggExPDE. For obtaining flexible application and high efficiency, this library utilizes expression templates, structured grids and MPI and OpenMP parallelization. The task of the research project is to develop new software techniques for obtaining optimal efficiency on hybrid HPC systems with multicore architecture using expression templates. The second aim of the project is to apply the library StaggExPDE and its Maxwell solver for two important applications of high performance computing in Erlangen. One of them is thin film solar cell simulations. Since thin film technology is the future technology of solar cells, research in this direction is of general public interest. Another application is lithography simulation. Since masks for producing new chips consist of features of size of the wavelength and below, numerical simulati- ons using high performance computers are extremely important for lithography simulations.

Publications

  • Pflaum C., Rahimi Z.:
    A finite difference frequency domain (FDFD) method for materials with negative permittivity
    ICEAA '09 (Turin, 14. September 2009 - 18. September 2009)
    In: Proceedings of International Conference of "Electromagnetics in Advanced Applications", 2009. ICEAA '09 2009
    DOI: 10.1109/TCE.2002.1037065
    URL: http://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=5297314&isnumber=5297261&tag=1
  • Pflaum C., Rahimi Z.:
    Automatic Parallelization of Staggered Grid Codes with Expression Templates
    In: International Journal of Computational Science and Engineering 4 (2009), p. 306-313
    ISSN: 1742-7185
    DOI: 10.1504/IJCSE.2009.029166
    URL: http://www.inderscience.com/search/index.php?action=record&rec_id=29166&prevQuery=&ps=10&m=or
  • Pflaum C., Rahimi Z.:
    An iterative solver for the finite-difference frequency-domain (FDFD) method for the simulation of materials with negative permittivity
    In: Numerical Linear Algebra With Applications (2010), p. 1-18
    ISSN: 1070-5325
    DOI: 10.1002/nla.746
    URL: http://onlinelibrary.wiley.com/doi/10.1002/nla.746/pdf

Chair of Electron Devices
FAU Erlangen-Nürnberg

Cauerstr. 6
91058 Erlangen
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