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Unusual Phonon Thermal Transport Mechanisms in Monolayer Beryllene

Materials Science 2024-09-10 v1 Mesoscale and Nanoscale Physics

Abstract

We compute the thermal conductivity of monolayer beryllene using the linearized phonon Boltzmann transport equation with interatomic force constants obtained from \textit{ab-initio} calculations. Monolayer beryllene exhibits an impressive thermal conductivity of 270 W/m\cdotK at room temperature, exceeding that of bulk beryllium by over 100%. Our study reveals a remarkable temperature-dependent behavior: κT2\kappa \sim T^{-2} at low temperatures, attributed to higher normal phonon-phonon scatterings, and κT1\kappa \sim T^{-1} at high temperatures, due to Umklapp phonon interactions. Mode-specific analysis reveals that flexural phonons with longer lifetimes are the primary contributors to thermal conductivity, accounting for approximately 80%. This dominance results from their lower scattering rates in the out-of-plane direction due to a restricted phase space for scattering processes. Additionally, our findings highlight suppressed Umklapp scattering and reduced phase space for flexural modes, providing a thorough understanding of the eased thermal conductivity in monolayer beryllene and its potential for advanced thermal management applications.

Keywords

Cite

@article{arxiv.2409.05766,
  title  = {Unusual Phonon Thermal Transport Mechanisms in Monolayer Beryllene},
  author = {Sapta Sindhu Paul Chowdhury and Santosh Mogurampelly},
  journal= {arXiv preprint arXiv:2409.05766},
  year   = {2024}
}

Comments

5 pages, 5 figures