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Number of results
2005 | 107 | 1 | 179-183

Article title

Finite-Difference Time-Domain Simulation of Mid- and Far-Infrared Quantum Cascade Lasers

Content

Title variants

Languages of publication

EN

Abstracts

EN
We present simulations of mid- and far-infrared quantum cascade lasers operating with/without external magnetic field. Maxwell-Bloch solver based on the finite-difference time-domain method was used in our investigation. Reduction of the far-infrared quantum cascade laser emission intensity is associated with increased optical losses in highly doped layers when magnetic field is changed from 4.2 T to 6.2 T. A simulated emission spectrum of mid-infrared disc-shaped quantum cascade laser with 60μm radius is consistent with the experimentally observed irregular spacing between quantum cascade laser emission lines.

Keywords

EN

Contributors

  • Semiconductor Physics Institute, A. Goštauto 11, 01108 Vilnius, Lithuania
  • Institute of Photonics and Center for Micro- and Nanostructures, Vienna University of Technology, 1040 Vienna, Austria
author
  • Semiconductor Physics Institute, A. Goštauto 11, 01108 Vilnius, Lithuania
author
  • Semiconductor Physics Institute, A. Goštauto 11, 01108 Vilnius, Lithuania
author
  • Semiconductor Physics Institute, A. Goštauto 11, 01108 Vilnius, Lithuania
  • Semiconductor Physics Institute, A. Goštauto 11, 01108 Vilnius, Lithuania
author
  • Semiconductor Physics Institute, A. Goštauto 11, 01108 Vilnius, Lithuania
author
  • Institute of Photonics and Center for Micro- and Nanostructures, Vienna University of Technology, 1040 Vienna, Austria
  • Institute of Photonics and Center for Micro- and Nanostructures, Vienna University of Technology, 1040 Vienna, Austria

References

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  • 2. R. Khler, A. Tredicucci, F. Beltram, H.E. Beere, E.H. Linfield, A.G. Davies, D.A. Ritchie, R.C. Iotti, F. Rossi, Nature, 417, 156, 2002
  • 3. Y. Yamamoto, R.E. Slusher, Physics Today, 46, 66, 1993
  • 4. R.W. Ziolkowski, J.M. Arnold, D.M. Gogny, Phys. Rev. A, 52, 3082, 1995
  • 5. A. Taflove, Computational Electrodynamics: The Finite-Difference Time-Domain Method, Artech House, Norwood (MA) (USA) 1995 (and references within)
  • 6. J.L. Young, Radio Sci., 29, 1513, 1994
  • 7. S. Anders, W. Schrenk, E. Gornik, G. Strasser, Appl. Phys. Lett., 80, 4094, 2002
  • 8. S. Anders, V. Tamosiunas, W. Schrenk, G. Strasser, Phys. Rev. B, 69, 073309, 2004
  • 9. V. Tamosiunas, R. Zobl, J. Ulrich, K. Unterrainer, R. Colombelli, C. Gmachl, K. West, L. Pfeiffer, F. Capasso, Appl. Phys. Lett., 83, 3873, 2003

Document Type

Publication order reference

Identifiers

YADDA identifier

bwmeta1.element.bwnjournal-article-appv107n124kz
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