How heat propagates in liquid $^3$He
Abstract
In Landau's Fermi liquid picture, transport is governed by scattering between quasi-particles. The normal liquid He conforms to this picture but only at very low temperature. Here, we show that the deviation from the standard behavior is concomitant with the fermion-fermion scattering time falling below the Planckian time, and the thermal diffusivity of this quantum liquid is bounded by a minimum set by fundamental physical constants and observed in classical liquids. This points to collective excitations (a sound mode) as carriers of heat. We propose that this mode has a wavevector of 2 and a mean free path equal to the de Broglie thermal length. This would provide an additional conducting channel with a temperature dependence, matching what is observed by experiments. The experimental data from 0.007 K to 3 K can be accounted for, with a margin of 10\%, if thermal conductivity is the sum of two contributions: one by quasi-particles (varying as the inverse of temperature) and and another by sound (following the square root of temperature).
Cite
@article{arxiv.2309.00502,
title = {How heat propagates in liquid $^3$He},
author = {Kamran Behnia and Kostya Trachenko},
journal= {arXiv preprint arXiv:2309.00502},
year = {2024}
}
Comments
8 pages, 5 figures and a supplement