• DocumentCode
    2168577
  • Title

    Selective Growth of Diamond in Thermal Vias for GaN HEMTs

  • Author

    Poust, Benjamin ; Gambin, V. ; Sandhu, Ravi ; Smorchkova, Ioulia ; Lewis, Grace ; Elmadjian, Raffi ; Li, Di-Jie ; Geiger, Chris ; Heying, Benjamin ; Wojtowicz, Mike ; Oki, Aaron ; Pate, Bradford B. ; Feygelson, Tatyana ; Hobart, K.

  • Author_Institution
    Northrop Grumman Aerosp. Syst., Redondo Beach, CA, USA
  • fYear
    2013
  • fDate
    13-16 Oct. 2013
  • Firstpage
    1
  • Lastpage
    4
  • Abstract
    GaN on SiC technology has offered tremendous benefits over existing GaAs-based RF technologies. The high breakdown voltage and current handling capability of GaN HEMTs enable a 10x increase in RF power over conventional GaAs- based devices for the same device size. These benefits translate to dramatically improved performance for military and commercial communications, radar and high-power RF systems. However, despite the high thermal conductivity materials and optimized epitaxial profiles already being used, additional improvement of MMIC performance is limited by thermal constraints. Substrate and near channel thermal resistance is a key thermal bottleneck limiting device compaction and junction temperature reduction. NGAS will report on revolutionary methods being developed to directly integrate high quality, high thermal conductivity diamond materials with more than 4x greater thermal conductivity over existing state-of-the-art GaN on SiC HEMT technology. Reducing temperature in the device channel and surrounding regions is critical for reliable operation, supporting additional device compaction and improving circuit performance.
  • Keywords
    III-V semiconductors; diamond; gallium arsenide; high electron mobility transistors; silicon compounds; thermal conductivity; thermal resistance; wide band gap semiconductors; GaN; GaN HEMT; MMIC performance; RF power; SiC; SiC technology; breakdown voltage; channel thermal resistance; current handling capability; epitaxial profile; junction temperature reduction; selective growth; thermal bottleneck; thermal conductivity diamond material; thermal constraint; thermal vias; Diamonds; Gallium nitride; HEMTs; MODFETs; Silicon carbide; Thermal conductivity; Thermal resistance;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Compound Semiconductor Integrated Circuit Symposium (CSICS), 2013 IEEE
  • Conference_Location
    Monterey, CA
  • Type

    conf

  • DOI
    10.1109/CSICS.2013.6659244
  • Filename
    6659244