Development of Diamond-like Carbon Film as Passivation Layers for Power Transistors

  • Chang, Hoon (Dept. of Electronics Engineering, Korea Univ) ;
  • Lee, Hae-Wang (Dept. of Electronics Engineering, Korea Univ) ;
  • Chung, Suk-Koo (Dept. of Electronic Engineering, Korea Univ) ;
  • Shin, Jong-Han (Dept. of Material Science and Engineering, Korea Univ) ;
  • Lim, Dae-Soon (Dept. of Material Science and Engineering, Korea Univ) ;
  • Park, Jung-Ho (Dept. of Electronics Engineering, Korea Univ.)
  • Published : 1997.06.01

Abstract

Because of the novel characteristics such as chemical stability, hardness, electrical resistivity and thermal conductivity, diamond-like carbon (DLC) film is a suitable material for the passivation layers. For this purpose, using the PECVD, DLC films were synthesized at room temperature. The adhesion and the hardness of the DLC films deposited on Si an SiO2 substrate were measured. The resistivity of 5.3$\times$$10^8$$\Omega$.cm was measured by automatic spreading resistance probe analysis method. The thermal conductivities of different DLC films were measured and compared with that of phospho silicate glass (PSG) film which is commonly used as passivation layers. The thermal conductivity of DLC film was improved by increasing hydrogen flow rate up to 90 sccm and was better than that of PSG film. The patterning techniques of the DLC film developed using the RIE and the lift-off method to form 5$\mu\textrm{m}$ line. Finally, the thermal characteristics of the power transistor with the DLC film as passiviation layer was analyzed.

Keywords

References

  1. Diamond and Related Materials v.3 Diamond-like Layers as Passivation Coating for Power Bipolar Transistors J. Szmidt
  2. 2nd Int. ADC'93 Microfabrication Technique for Diamond Devices Shin-ichi Shikata;Yoshiki Nishibayashi;Tadashi Tomikawa;Naohiro Toda;Naoji Fujimori
  3. J. Appl. Phys. v.74 On the Microstructural, Optical and Thermal Properties of Hydrogenated Amorphous Carbon Films Prpared by Plasma Enhanced Chemical Vapor Deposition L. H. Chou;H. W. Wang
  4. J. Appl. Phys. v.76 Picosecond Optical Studies of Amorphous Diamond and Diamondlike Carbon: Thermal Conductivity and Longitudinal Sound Velocity Christopher J. Morath;Humphrey J. Maris