Effect of characteristic size on the collective phonon transport in crystalline GeTe

Kanka Ghosh, Andrzej Kusiak, and Jean-Luc Battaglia
Phys. Rev. Materials 5, 073605 – Published 9 July 2021
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Abstract

We study the effect of characteristic size variation on the phonon thermal transport in crystalline GeTe for a wide range of temperatures using the first-principles density-functional method coupled with the kinetic collective model approach. The characteristic size dependence of phonon thermal transport reveals an intriguing collective phonon transport regime, located in between the ballistic and the diffusive transport regimes. Therefore, systematic investigations have been carried out to describe the signatures of phonon hydrodynamics via the competitive effects between grain size and temperature. A characteristic nonlocal length associated with phonon hydrodynamics and a heat wave propagation length has been extracted. The connections between phonon hydrodynamics and these length scales are discussed in terms of the Knudsen number. Further, the scaling relation of thermal conductivity as a function of characteristic size in the intermediate size range emerges as a crucial indicator of the strength of the hydrodynamic behavior. A ratio concerning normal and resistive scattering rates has been employed to understand these different scaling relations, which seems to control the strength and prominent visibility of the collective phonon transport in GeTe. This systematic investigation emphasizes the importance of the competitive effects between temperature and characteristic size on phonon hydrodynamics in GeTe, which can lead to a better understanding of the generic behavior and consequences of the phonon hydrodynamics and its controlling parameters in low-thermal conductivity materials.

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  • Received 30 April 2021
  • Accepted 28 June 2021

DOI:https://doi.org/10.1103/PhysRevMaterials.5.073605

©2021 American Physical Society

Physics Subject Headings (PhySH)

Condensed Matter, Materials & Applied Physics

Authors & Affiliations

Kanka Ghosh*, Andrzej Kusiak, and Jean-Luc Battaglia

  • University of Bordeaux, CNRS, Arts et Metiers Institute of Technology, Bordeaux INP, INRAE, I2M Bordeaux, 351 Cours de la Libération, F-33400 Talence, France

  • *kanka.ghosh@u-bordeaux.fr

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Issue

Vol. 5, Iss. 7 — July 2021

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