Monte Carlo transient phonon transport in silicon and germanium at nanoscales

David Lacroix, Karl Joulain, and Denis Lemonnier
Phys. Rev. B 72, 064305 – Published 23 August 2005

Abstract

Heat transport at nanoscales in semiconductors is investigated with a statistical method. The Boltzmann transport equation (BTE), which characterizes phonon motion and interaction within the crystal lattice, has been simulated with a Monte Carlo technique. Our model takes into account media frequency properties through the dispersion curves for longitudinal and transverse acoustic branches. The BTE collisional term involving phonon scattering processes is simulated with the relaxation times approximation theory. A new distribution function accounting for the collisional processes has been developed in order to respect energy conservation during phonons scattering events. This nondeterministic approach provides satisfactory results in what concerns phonon transport in both ballistic and diffusion regimes. The simulation code has been tested with silicon and germanium thin films; temperature propagation within samples is presented and compared to analytical solutions (in the diffusion regime). The two-material bulk thermal conductivity is retrieved for temperature ranging between 100 K and 500 K. Heat transfer within a plane wall with a large thermal gradient (250 K to 500 K) is proposed in order to expose the model ability to simulate conductivity thermal dependence on heat exchange at nanoscales. Finally, size effects and validity of heat conduction law are investigated for several slab thicknesses.

    • Received 8 April 2005

    DOI:https://doi.org/10.1103/PhysRevB.72.064305

    ©2005 American Physical Society

    Authors & Affiliations

    David Lacroix*, Karl Joulain, and Denis Lemonnier

    • Laboratoire d’Études Thermiques, ENSMA, 1, Avenue Clément Ader 86960 Futuroscope Cedex, France

    • *Also at Laboratoire d’Énergétique et de Mécanique Théorique et Appliquée, Université Henri Poincaré, Nancy 1, 54506 Vandœuvre Cedex, France. Electronic address: David.Lacroix@lemta.uhp-nancy.fr
    • Electronic address: karl.joulain@let.ensma.fr
    • Electronic address: denis.lemonnier@let.ensma.fr

    Article Text (Subscription Required)

    Click to Expand

    References (Subscription Required)

    Click to Expand
    Issue

    Vol. 72, Iss. 6 — 1 August 2005

    Reuse & Permissions
    Access Options
    Author publication services for translation and copyediting assistance advertisement

    Authorization Required


    ×
    ×

    Images

    ×

    Sign up to receive regular email alerts from Physical Review B

    Log In

    Cancel
    ×

    Search


    Article Lookup

    Paste a citation or DOI

    Enter a citation
    ×