English

Thermal resistance from non-equilibrium phonons at Si-Ge interface

Mesoscale and Nanoscale Physics 2024-02-27 v2

Abstract

As nanostructured devices become prevalent, interfaces often play an important role in thermal transport phenomena. However, interfacial thermal transport remains poorly understood due to complex physics across a wide range of length scales from atomistic to microscale. Past studies on interfacial thermal resistance have focused on interface-phonon scattering at the atomistic scale but overlooked the complex interplay of phonon-interface and phonon-phonon scattering at microscale. Here, we use the Peierls-Boltzmann transport equation to show that the resistance from the phonon-phonon scattering of non-equilibrium phonons near a Si-Ge interface is much larger than that directly caused by the interface scattering. We report that non-equilibrium in phonon distribution leads to significant entropy generation and thermal resistance upon three-phonon scattering by the Boltzmann's H-theorem. The physical origin of non-equilibrium phonons in Ge is explained with the mismatch of phonon dispersion, density-of-states, and group velocity, which serve as general guidance for estimating the non-equilibrium effect on interfacial thermal resistance. Our study bridges a gap between atomistic scale and less studied microscale phenomena, providing comprehensive understanding of overall interfacial thermal transport and the significant role of phonon-phonon scattering.

Keywords

Cite

@article{arxiv.2212.05915,
  title  = {Thermal resistance from non-equilibrium phonons at Si-Ge interface},
  author = {Xun Li and Jinchen Han and Sangyeop Lee},
  journal= {arXiv preprint arXiv:2212.05915},
  year   = {2024}
}

Comments

Revised manuscript

R2 v1 2026-06-28T07:31:02.676Z