| Literature DB >> 29725072 |
Jianguo Wang1,2, Guangqiang Wang3, Dongyang Wang3, Shuang Li3,4, Peng Zeng3.
Abstract
High power vacuum electronic devices of millimeter wave to terahertz regime are attracting extensive interests due to their potential applications in science and technologies. In this paper, the design and experimental results of a powerful compact oversized surface wave oscillator (SWO) in Y-band are presented. The cylindrical slow wave structure (SWS) with rectangular corrugations and large diameter about 6.8 times the radiation wavelength is proposed to support the surface wave interacting with annular relativistic electron beam. By choosing appropriate beam parameters, the beam-wave interaction takes place near the π-point of TM01 mode dispersion curve, giving high coupling impedance and temporal growth rate compared with higher TM0n modes. The fundamental mode operation of the device is verified by the particle-in-cell (PIC) simulation results, which also indicate its capability of tens of megawatts power output in the Y-band. Finally, a compact experimental setup is completed to validate our design. Measurement results show that a terahertz pulse with frequency in the range of 0.319-0.349 THz, duration of about 2 ns and radiation power of about 2.1 MW has been generated.Entities:
Year: 2018 PMID: 29725072 PMCID: PMC5934374 DOI: 10.1038/s41598-018-25466-w
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Schematic and apparatus of the oversized Y-band SWO.
Figure 2Dispersion curves and coupling impedances of TM01, TM02 and TM03 modes.
Figure 3PIC simulation results.
Figure 4SEM images of cathode and SWS.
Figure 5Experimental layout and results.