| Literature DB >> 29531359 |
Andrey Fokin1, Mikhail Glyavin2, German Golubiatnikov2, Lev Lubyako2, Mikhail Morozkin2, Boris Movschevich2, Alexander Tsvetkov2, Gregory Denisov2.
Abstract
Many state-of-the-art fundamental and industrial projects need the use of terahertz radiation with high power and small linewidth. Gyrotrons as radiation sources provide the desired level of power in the sub-THz and THz frequency range, but have substantial free-running frequency fluctuations of the order of 10-4. Here, we demonstrate that the precise frequency stability of a high-power sub-THz gyrotron can be achieved by a phase-lock loop in the anode voltage control. The relative width of the frequency spectrum and the frequency stability obtained for a 0.263 THz/100 W gyrotron are 4 × 10-12 and 10-10, respectively, and these parameters are better than those demonstrated so far with high-power sources by almost three orders of magnitude. This approach confirms its potential for ultra-high precision spectroscopy, the development of sources with large-scale radiating apertures, and other new projects.Entities:
Year: 2018 PMID: 29531359 PMCID: PMC5847556 DOI: 10.1038/s41598-018-22772-1
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Scheme of the gyrotron and power supply connections.
Figure 2Spectrum of a free-running gyrotron.
Figure 3Block diagram of the phase-locked loop units for a sub-THz gyrotron.
Figure 4Observed frequency spectrum of the gyrotron with phase-locked loop at an intermediate frequency with spans of 60 Hz (a) and 2 MHz (b).