The ultralow thermal conductivity κ observed experimentally in intentionally roughened silicon nanowires (SiNWs) is reproduced in phonon Monte Carlo simulations with exponentially correlated real-space rough surfaces similar to measurement [J. Lim, K. Hippalgaonkar, S. C. Andrews, A. Majumdar, and P. Yang, Nano Lett. 12, 2475 (2012)]. Universal features of thermal transport are revealed by presenting κ as a function of the normalized geometric mean free path λˉ (0<λˉ<1); the diffusive (Casimir) limit corresponds to λˉ=1/2. κ vs λˉ is exponential at low-to-moderate roughness (high λˉ), where internal scattering randomly interrupts phonon bouncing across the SiNW, and linear at high roughness (low λˉ), where multiple scattering events at the same surface results in ultralow, amorphous-limit thermal conductivity.
@article{arxiv.1506.02350,
title = {Universal features of phonon transport in nanowires with correlated surface roughness},
author = {L. N. Maurer and Z. Aksamija and E. B. Ramayya and A. H. Davoody and I. Knezevic},
journal= {arXiv preprint arXiv:1506.02350},
year = {2015}
}