International Journal of Terahertz Science and Technology
  TST >> Vol.7, No.1, March 2014: PP. 23-38
 

(Invited paper) High-Power THz-Waves using gyrotrons: new physics results

Stefano Alberti *, Falk Braunmueller, Trach Minh Tran, Jean-Philippe Hogge, Jérémy Genoud, and Minh Quang Tran
Centre de Recherches en Physique des Plasmas (CRPP),
Ecole Polytechnique Fédérale de Lausanne (EPFL), Station 13, 1015 Lausanne, Switzerland
* Email: stefano.alberti@epfl.ch

View Full Text: PDF

Abstract: Gyrotrons are high-power coherent radiation sources based on the cyclotron maser instability. Since more than three decades the research and development of gyrotrons has been essentially driven from the need of high-power MW-level sources in the THz frequency range (0.1-1 THz) for electron cyclotron resonance heating of magnetically confined plasmas such as in ITER and DEMO. A more recent spin-off research activity has led to the development of lower power (1-100 W) gyrotrons with frequencies belonging to the THz domain. One of the main applications in the THz domain is in the field of Dynamic Nuclear Polarization Nuclear Magnetic Resonance spectroscopy (DNP/NMR).

With a THz gyrotron oscillator developped for DNP/NMR spectroscopy and operating at 260 GHz, novel operational regimes have been recently experimentally demonstrated in which the non-linear interaction excites a finite number of side-bands and eventually ends in a chaotic dynamics of the THz radiation field. The route to chaos via a period doubling cascade dynamics is experimentally observed and is supported by numerical simulations. In presence of phase-locked frequency-equidistant side-bands, a novel regime characterized by high-power nanosecond pulses is experimentally observed and is associated to a self-consistent Q-switch mechanism in which the cavity diffraction quality factor dynamically varies by nearly two orders of magnitude on a subnanosecond timescale. This novel regime is also well predicted with the self-consistent TWANG code and may open up new applications for gyrotrons.

Keywords: Terahertz Waves, Gyrotron Oscillator, Non-stationary regime (automodulation), Chaos, Nanosecond pulses, mode-locking, Q-switch.

Received: 2013-12-19

Published: 2014-3-31

Acknowledgments: S. Alberti would like to thank the organizers of the 4th SICAST conference for inviting him and giving the opportunity to present the material of this paper.

Work supported by Requip (206021-121303/1 and 206021_144983), Sinergia (CRSI20-122708/1), and (200020-120503/1) grants of the Swiss National Science Foundation, by the School of Basic Science/EPFL and by the EPFL. The authors would like to thank the precious work of all the EPFL staff involved in the experimental set-up. In particular, Ph. Cuanillon, G. Grandjean, M. Longchamp (IPMC) as well as D. Fasel, S. Allenspach, S. Couturier, and J. Dubray at CRPP.

Cite this article:
Stefano Alberti, Falk Braunmueller, Trach Minh Tran, Jean-Philippe Hogge, J└r└my Genoud, and Minh Quang Tran.(Invited paper) QCL based terahertz frequency metrology[J]. International Journal of Terahertz Science and Technology, 2014, Vol.7, No.1: 23-38.  DOI:10.11906/TST.023-038.2014.03.03

URL: http://www.tstnetwork.org/10.11906/TST.023-038.2014.03.03

 

 
 

Print | close

Copyright© 2008 Scinco Inc. All Rights Reserved
P.O.Box 6982, Williamsburg, VA 23188, USA var cnzz_protocol = (("https:" == document.location.protocol) ? "https://" : "http://");document.write(unescape("%3Cspan id='cnzz_stat_icon_2409046'%3E%3C/span%3E%3Cscript src='" + cnzz_protocol + "s4.cnzz.com/stat.php%3Fid%3D2409046%26show%3Dpic' type='text/javascript'%3E%3C/script%3E"));