• DocumentCode
    235009
  • Title

    Thermal characterization of power devices using graphene-based film

  • Author

    Pengtu Zhang ; Nan Wang ; Zanden, Carl ; Lilei Ye ; Yifeng Fu ; Liu, Jiangchuan

  • Author_Institution
    Dept. of Microtechnol. & Nanosci. (MC2), Chalmers Univ. of Technol., Gothenburg, Sweden
  • fYear
    2014
  • fDate
    27-30 May 2014
  • Firstpage
    459
  • Lastpage
    463
  • Abstract
    Due to its atomic structure with sp2 hybrid orbitals and unique electronic properties, graphene has an extraordinarily high thermal conductivity which has been reported to be up to 5000 W/mK. As a consequence, the use of graphene-based materials for thermal management has been subject to substantial attention during recent years in both academia and industry. In this paper, the development of a new type of graphene-based thin film for heat dissipation in power devices is presented. The surface of the developed graphene based film is primarily composed of functionalized graphene oxide, that can be bonded chemically to the device surface and thus minimize the interface thermal resistance caused by surface roughness. A very high in-plane thermal conductivity with a maximum value of 1600 W/mK was detected by laser flash machine regarding to the graphene-based films. To investigate the structure of the graphene-based films, scanning electron microscopy (SEM) and raman spectroscopy were carried out. Finally, LED demonstrators were built to illustrate the thermal performance of graphene-based film and the functional layers. IR camera recorded a 5°C lower temperature of a LED demonstrator with SHT G1000 as the binding layer instead of a commercial thermal conductive adhesive.
  • Keywords
    Raman spectroscopy; cooling; graphene; power electronics; scanning electron microscopy; surface roughness; thermal conductivity; thermal management (packaging); thermal resistance; thin films; IR camera; LED demonstrators; Raman spectroscopy; SEM; functionalized graphene oxide; graphene-based thin film; heat dissipation; in-plane thermal conductivity; interface thermal resistance; laser flash machine; power devices; scanning electron microscopy; surface roughness; temperature 5 C; thermal characterization; thermal conductive adhesive; Conductivity; Dispersion; Films; Graphene; Substrates; Thermal conductivity; Thermal resistance;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Electronic Components and Technology Conference (ECTC), 2014 IEEE 64th
  • Conference_Location
    Orlando, FL
  • Type

    conf

  • DOI
    10.1109/ECTC.2014.6897324
  • Filename
    6897324