English

Heat current anticorrelation effects leading to thermal conductivity reduction in nanoporous Si

Mesoscale and Nanoscale Physics 2020-12-02 v1

Abstract

Prevailing nanostructuring strategies focus on increasing phonon scattering and reducing the mean-free-path of phonons across the spectrum. In nanoporous Si materials, for example, boundary scattering reduces thermal conductivity drastically. In this work, we identify an unusual anticorrelated specular phonon scattering effect which can result in additional reductions in thermal conductivity of up to ~ 80% for specific nanoporous geometries. We further find evidence that this effect has its origin in heat trapping between large pores with narrow necks. As the heat becomes trapped between the pores, phonons undergo multiple specular reflections such that their contribution to the thermal conductivity is partly undone. We find this effect to be wave-vector dependent at low temperatures. We use large-scale molecular dynamics simulations, wave packet analysis, as well as an analytical model to illustrate the anticorrelation effect, evaluate its impact on thermal conductivity, and detail how it can be controlled to manipulate phonon transport in nanoporous materials.

Keywords

Cite

@article{arxiv.2011.03404,
  title  = {Heat current anticorrelation effects leading to thermal conductivity reduction in nanoporous Si},
  author = {Laura de Sousa Oliveira and S. Aria Hosseini and Alex Greaney and Neophytos Neophytou},
  journal= {arXiv preprint arXiv:2011.03404},
  year   = {2020}
}

Comments

24 pages, 5 figures