Published 2019 | Version v1
Journal article

Computational prediction of lattice thermal conductivity: A comparison of molecular dynamics and Boltzmann transport approaches

  • 1. University of Chicago, Chicago, IL (United States)
  • 2. Argonne National Laboratory (ANL), Argonne, IL (United States)

Description

The predictive modeling of lattice thermal conductivity is of fundamental importance for the understanding and design of materials for a wide range of applications. Two major approaches, namely molecular dynamics (MD) simulations and calculations solving approximately the Boltzmann transport equation (BTE), have been developed to compute the lattice thermal conductivity. We present a detailed direct comparison of these two approaches, using as prototypical cases MgO and PbTe. The comparison, carried out using empirical potentials, takes into account the effects of fourth order phonon scattering, temperature-dependent phonon frequencies (phonon renormalization), and investigates the effects of quantum vs classical statistics. We clarify that equipartition, as opposed to Maxwell-Boltzmann, govern the statistics of phonons in MD simulations. We find that lattice thermal conductivity values from MD and BTE show an apparent, satisfactory agreement; however such an agreement is the result of error cancellations. As a result we also show that the primary effect of statistics on thermal conductivity is via the scattering rate dependence on phonon populations.

Availability note (English)

Available from https://www.osti.gov/servlets/purl/1560856; https://www.osti.gov/biblio/1560856; DOE Accepted Manuscript full text, or the publishers Best Available Version will be available free of charge after the embargo period

Additional details

Publishing Information

Journal Title
Physical Review Materials
Journal Volume
3
Journal Issue
8
Journal Page Range
vp.
ISSN
2475-9953

Optional Information