Super-suppression of long wavelength phonons in constricted nanoporous geometries

Fuente: arXiv
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Main Authors: Greaney, Alex, Hosseini, S. Aria, Oliveira, Laura de Sousa, Davies, Alathea, Neophytou, Neophytos
Format: Preprint
Published: 2024
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author Greaney, Alex
Hosseini, S. Aria
Oliveira, Laura de Sousa
Davies, Alathea
Neophytou, Neophytos
author_facet Greaney, Alex
Hosseini, S. Aria
Oliveira, Laura de Sousa
Davies, Alathea
Neophytou, Neophytos
contents In a typical semiconductor material, the majority of heat is carried by long wavelength, long mean-free-path phonons. Nanostructuring strategies to reduce thermal conductivity, a promising direction in the field of thermoelectrics, place scattering centers of size and spatial separation comparable to the mean-free-paths of the dominant phonons to selectively scatter them. The resultant thermal conductivity is in most cases well predicted using Matthiessens rule. In general, however, long wavelength phonons are not as effectively scattered as the rest of the phonon spectrum. In this work, using large-scale Molecular Dynamics simulations, Non-Equilibrium Greens Function simulations, and Monte Carlo simulations, we show that specific nanoporous geometries, which create narrow constrictions in the passage of phonons, lead to anticorrelated heat currents in the phonon spectrum. This results in super-suppression of long-wavelength phonons due to heat trapping, and reductions in the thermal conductivity well below what is predicted by Matthiessens rule.
format Preprint
id arxiv_https___arxiv_org_abs_2405_04183
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Super-suppression of long wavelength phonons in constricted nanoporous geometries
Greaney, Alex
Hosseini, S. Aria
Oliveira, Laura de Sousa
Davies, Alathea
Neophytou, Neophytos
Mesoscale and Nanoscale Physics
In a typical semiconductor material, the majority of heat is carried by long wavelength, long mean-free-path phonons. Nanostructuring strategies to reduce thermal conductivity, a promising direction in the field of thermoelectrics, place scattering centers of size and spatial separation comparable to the mean-free-paths of the dominant phonons to selectively scatter them. The resultant thermal conductivity is in most cases well predicted using Matthiessens rule. In general, however, long wavelength phonons are not as effectively scattered as the rest of the phonon spectrum. In this work, using large-scale Molecular Dynamics simulations, Non-Equilibrium Greens Function simulations, and Monte Carlo simulations, we show that specific nanoporous geometries, which create narrow constrictions in the passage of phonons, lead to anticorrelated heat currents in the phonon spectrum. This results in super-suppression of long-wavelength phonons due to heat trapping, and reductions in the thermal conductivity well below what is predicted by Matthiessens rule.
title Super-suppression of long wavelength phonons in constricted nanoporous geometries
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2405.04183