• DocumentCode
    1543868
  • Title

    Investigation of NbN phonon-cooled HEB mixers at 2.5 THz

  • Author

    Schwaab, G.W. ; Sirmain, G. ; Schubert, J. ; Hubers, H.-W. ; Gol´tsman, G. ; Cherednichenko, S. ; Verevkin, A. ; Voronov, B. ; Gershenzon, E.

  • Author_Institution
    DLR Inst. of Space Sensor Technol., Berlin, Germany
  • Volume
    9
  • Issue
    2
  • fYear
    1999
  • fDate
    6/1/1999 12:00:00 AM
  • Firstpage
    4233
  • Lastpage
    4236
  • Abstract
    The development of superconducting hot electron bolometric (HEB) mixers has been a big step forward in the direction of quantum noise limited mixer performance at THz frequencies. Such mixers are crucial for the upcoming generation of airborne and spaceborne THz heterodyne receivers. In this paper we report on new results on a phonon-cooled NbN HEB mixer using e-beam lithography. The superconducting film is 3 nm thick. The mixer is 0.2 /spl mu/m long and 1.5 /spl mu/m wide and it is integrated in a spiral antenna on a Si substrate. The device is quasi-optically coupled through a Si lens and a dielectric beam combiner to the radiation of an optically pumped FIR ring gas laser cavity. The performance of the mixer at different THz frequencies from 0.69 to 2.55 THz with an emphasis on 2.52 THz is demonstrated. At 2.52 THz minimum DSB noise temperatures of 4200 K have been achieved at an IF of 1.5 GHz and a bandwidth of 40 MHz with the mixer mounted in a cryostat and a 0.8 m long signal path in air.
  • Keywords
    bolometers; electron beam lithography; heterodyne detection; hot carriers; infrared detectors; niobium compounds; power combiners; superconducting device noise; superconducting microwave devices; superconducting mixers; superconducting thin films; 0.2 micron; 0.69 to 2.55 THz; 0.8 m; 1.5 GHz; 1.5 micron; 3 nm; 40 MHz; DSB noise temperatures; FIR ring gas laser cavity; NbN; airborne heterodyne receivers; dielectric beam combiner; e-beam lithography; phonon-cooled HEB mixers; quantum noise limited mixer performance; signal path; spaceborne heterodyne receivers; spiral antenna; superconducting film; superconducting hot electron bolometric mixers; Dielectric substrates; Electrons; Frequency; Laser excitation; Lithography; Optical coupling; Optical noise; Spirals; Superconducting device noise; Superconducting films;
  • fLanguage
    English
  • Journal_Title
    Applied Superconductivity, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1051-8223
  • Type

    jour

  • DOI
    10.1109/77.783959
  • Filename
    783959