English

Nuclear quantum effects in thermal conductivity from centroid molecular dynamics

Chemical Physics 2021-05-10 v1

Abstract

We show that the centroid molecular dynamics (CMD) method provides a realistic way to calculate the thermal diffusivity a=λ/ρcVa=\lambda/\rho c_{\rm V} of a quantum mechanical liquid such as para-hydrogen. Once aa has been calculated, the thermal conductivity can be obtained from λ=ρcVa\lambda=\rho c_{\rm V}a, where ρ\rho is the density of the liquid and cVc_{\rm V} is the constant-volume heat capacity. The use of this formula requires an accurate quantum mechanical heat capacity cVc_{\rm V}, which can be obtained from a path integral molecular dynamics simulation. The thermal diffusivity can be calculated either from the decay of the equilibrium density fluctuations in the liquid or by using the Green-Kubo relation to calculate the CMD approximation to λ\lambda and then dividing this by the corresponding approximation to ρcV\rho c_{\rm V}. We show that both approaches give the same results for liquid para-hydrogen and that these results are in good agreement with experimental measurements of the thermal conductivity over a wide temperature range. In particular, they correctly predict a decrease in the thermal conductivity at low temperatures -- an effect that stems from the decrease in the quantum mechanical heat capacity and has eluded previous para-hydrogen simulations. We also show that the method gives equally good agreement with experimental measurements for the thermal conductivity of normal liquid helium.

Keywords

Cite

@article{arxiv.2104.09566,
  title  = {Nuclear quantum effects in thermal conductivity from centroid molecular dynamics},
  author = {Benjamin J. Sutherland and William H. D. Moore and David. E. Manolopoulos},
  journal= {arXiv preprint arXiv:2104.09566},
  year   = {2021}
}

Comments

13 pages, 9 figures, 3 tables

R2 v1 2026-06-24T01:20:46.791Z