• DocumentCode
    2051384
  • Title

    The Molecular Dynamics Simulation of Monocrystal Carbon, Silicon and Germanium Thermal Conductivity

  • Author

    Wu, Guoqiang ; Kong, Xianren ; Sun, Zhaowei ; Zhao, Dan

  • Author_Institution
    Res. Center of Satellite Technol., Harbin Inst. of Technol.
  • fYear
    2006
  • fDate
    18-21 Jan. 2006
  • Firstpage
    25
  • Lastpage
    29
  • Abstract
    In this paper the thermal conductivities of monocrystal carbon, silicon, and germanium nanometer thin film are simulated respectively using non-equilibrium molecular dynamics (NEMD) method and corresponding Tersoff potential energy function. The simulation results indicate that the thermal conductivities of those nanometer thin films are obviously lower than the corresponding thermal conductivities of their bulk crystals under the same temperature. The thermal conductivities increase with the increasing of thin film thickness, and the conductivities have an approximately linear relationship with thickness of the thin films. The curve slope of carbon thermal conductivity is larger than that of silicon and germanium. The calculation results of thermal conductivities demonstrate distinct size effect. In normal direction, the thin film thermal conductivities of carbon, silicon and germanium crystals decline with the increasing of temperature, and the declining degree steps down in the sequence of carbon, silicon and germanium
  • Keywords
    carbon; elemental semiconductors; germanium; molecular dynamics method; nanoelectronics; semiconductor thin films; silicon; thermal conductivity; C; Ge; Si; Tersoff potential energy function; bulk crystals; germanium; molecular dynamics simulation; monocrystal carbon; nanometer thin film; nanoscale films; nonequilibrium molecular dynamics; silicon; size effect; thermal conductivity; thin film thickness; Arithmetic; Germanium; Integral equations; Potential energy; Satellites; Semiconductor thin films; Silicon; Temperature; Thermal conductivity; Transistors; molecular dynamics; nanoscale films; size effect; thermal conductivity;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Nano/Micro Engineered and Molecular Systems, 2006. NEMS '06. 1st IEEE International Conference on
  • Conference_Location
    Zhuhai
  • Print_ISBN
    1-4244-0139-9
  • Electronic_ISBN
    1-4244-0140-2
  • Type

    conf

  • DOI
    10.1109/NEMS.2006.334614
  • Filename
    4134896