Enhancing phonon thermal transport in 2H-CrX (X = S and Se) monolayers through robust bonding interactions.

Phys Chem Chem Phys

College of Materials Science and Engineering, Liaoning Technical University, Zhonghua Road. #47, Fuxin, Liaoning, 123000, China.

Published: August 2023

AI Article Synopsis

  • The study evaluates the electronic structure and thermal transport properties of 2H-CrX (X = S and Se) monolayers using density functional theory and Boltzmann transport theory, discovering that they are direct semiconductors with bandgaps of 0.91 and 0.69 eV.
  • Analysis shows that these monolayers have excellent mechanical and dynamic stability, confirmed by their elastic properties and phonon dispersion curves, along with thermal stability at 300 K through molecular dynamics simulations.
  • The high thermal conductivities of 131.7 and 88.6 W m K for 2H-CrS and 2H-CrSe, respectively, are linked to strong bonding, significant Young

Article Abstract

Inspired by the groundbreaking discovery of the 2H-MoS monolayer with outstanding physical properties, the electronic structure, structural stability, and thermal transport of 2H-CrX (X = S and Se) monolayers are theoretically evaluated using density functional theory (DFT) calculations and semiempirical Boltzmann transport theory. The 2H-CrX (X = S and Se) monolayers are direct semiconductors with the bandgaps of 0.91 and 0.69 eV. The elastic modulus and phonon dispersion curve analysis show that the 2H-CrX (X = S and Se) monolayers possess excellent mechanical and dynamic stabilities on account of elastic constants satisfying the Born-Huang criterion and the absence of negative frequencies. The thermal stabilities of the 2H-CrX (X = S and Se) monolayers at 300 K are proved by molecular dynamics (AIMD) simulations, as evidenced by the slight changes in the structural evolution and small fluctuation in total energy. High thermal conductivities of 131.7 and 88.6 W m K are discovered for 2H-CrS and 2H-CrSe monolayers at 300 K. Further analysis of the phonon group velocity, phonon relaxation time, and Grüneisen parameter shows that the high lattice thermal conductivities of 2H-CrX (X = S and Se) monolayers could be attributed to the great bond strength, large Young's modulus, relatively small atomic mass, high phonon group velocity, and long phonon relaxation time. In addition, the various scattering mechanisms are further considered in the calculations of phonon thermal transport to evaluate the effect of the scattering rates of the 2H-CrS and 2H-CrSe monolayers on the lattice thermal conductivity, and the determinative role is found for the phonon boundary scattering. Our present study would not only offer a fundamental understanding of the thermal transport properties of the 2H-CrX (X = S and Se) monolayers, but also provide theoretical guidelines for the experimental investigation of thermal management materials with 2H-phase.

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Source
http://dx.doi.org/10.1039/d3cp03420hDOI Listing

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