Direct simulation of second sound in graphene by solving the phonon Boltzmann equation via a multiscale scheme

Xiao-Ping Luo, Yang-Yu Guo, Mo-Ran Wang, and Hong-Liang Yi
Phys. Rev. B 100, 155401 – Published 1 October 2019

Abstract

The direct simulation of the dynamics of second sound in graphitic materials remains a challenging task due to lack of methodology for solving the phonon Boltzmann equation in such a stiff hydrodynamic regime. In this work we aim to tackle this challenge by developing a multiscale numerical scheme for the transient phonon Boltzmann equation under Callaway's dual relaxation model which captures well the collective phonon kinetics. Compared to traditional numerical methods, the present multiscale scheme is efficient, accurate, and stable in all transport regimes attributed to avoiding the use of time and spatial steps smaller than the relaxation time and mean free path of phonons. The formation, propagation, and composition of ballistic pulses and second sound in graphene ribbon in two classical paradigms for experimental detection are investigated via the multiscale scheme. The second sound is declared to be mainly contributed by ZA phonon modes, whereas the ballistic pulses are mainly contributed by LA and TA phonon modes. The influence of temperature, isotope abundance, ribbon size, and structure asymmetry on the second sound propagation is also explored. The speed of second sound in the observation window is found to be at most 20% smaller than the theoretical value in the hydrodynamic limit due to the finite umklapp, isotope, and edge resistive scattering. The present study will contribute to not only the solution methodology of the phonon Boltzmann equation, but also the physics of transient hydrodynamic phonon transport as guidance for future experimental detection.

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  • Received 29 July 2019

DOI:https://doi.org/10.1103/PhysRevB.100.155401

©2019 American Physical Society

Physics Subject Headings (PhySH)

Interdisciplinary PhysicsCondensed Matter, Materials & Applied Physics

Authors & Affiliations

Xiao-Ping Luo1, Yang-Yu Guo2, Mo-Ran Wang3, and Hong-Liang Yi1,*

  • 1Key Laboratory of Aerospace Thermophysics, Ministry of Industry and Information Technology, School of Energy Science and Engineering, Harbin Institute of Technology, 92 West Dazhi Street, Harbin 150001, China
  • 2Institute of Industrial Science, The University of Tokyo, Tokyo 153-8505, Japan
  • 3Key Laboratory for Thermal Science and Power Engineering of Ministry of Education, Department of Engineering Mechanics and CNMM, Tsinghua University, Beijing 100084, China

  • *Corresponding author: yihongliang@hit.edu.cn

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Issue

Vol. 100, Iss. 15 — 15 October 2019

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