Abstract

Thermal transport at small length scales has attracted significant attention in recent years and various experimental and theoretical methods have been developed to establish the reduced thermal conductivity. The fundamental understanding of how phonons move and the physical mechanisms behind nanoscale thermal transport, however, remains poorly understood. Here we move beyond thermal conductivity calculations and provide a rigorous and comprehensive physical description of thermal phonon transport in superlattices by solving the Boltzmann transport equation and using the Beckman-Kirchhoff surface scattering theory with shadowing to precisely describe phonon-surface interactions. We show that thermal transport in superlattices can be divided in two different heat transport modes having different physical properties at small length scales: layer-restricted and extended heat modes. We study how interface conditions, periodicity, and composition can be used to manipulate the distribution of thermal energy flow among such layer-restricted and extended heat modes. From predicted frequency and mean free path spectra of superlattices, we also investigate the existence of wave effects. The results and insights in this paper advance the fundamental understanding of heat transport in superlattices and the prospects of rationally designing thermal systems with tailored phonon transport properties.

Highlights

  • Where the subscript p denotes the different polarizations of phonons

  • The in-plane thermal conductivity of superlattices is calculated by using the well-established Fourier’s law of heat conduction, which is given by j = −κ∇T

  • The thermal conductivity κ of the superlattice is calculated by combining Eqs (1) and (2) and integrating the flux along the superlattice period t0 as

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Summary

Objectives

Our goal is to move beyond calculation of thermal conductivity and to establish how thermal phonons are transported within superlattices

Methods
Results
Conclusion
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