Semi-quantum approach to molecular dynamics simulation of thermal properties of low-dimensional nanostructures
arXiv:1112.5919 · doi:10.1103/PhysRevB.86.064305
Abstract
We present a detailed description of semi-quantum molecular dynamics simulation of stochastic dynamics of a system of interacting particles. Within this approach, the dynamics of the system is described with the use of classical Newtonian equations of motion in which the effects of phonon quantum statistics are introduced through random Langevin-like forces with a specific power spectral density (the color noise). The color noise describes the interaction of the molecular system with the thermostat. We apply this technique to the simulation of thermal properties and heat transport in different low-dimensional nanostructures. We describe the determination of temperature in quantum lattice systems, to which the equipartition limit is not applied. We show that one can determine the temperature of such system from the measured power spectrum and temperature- and relaxation-rate-independent density of vibrational (phonon) states. We simulate the specific heat and heat transport in carbon nanotubes, as well as the heat transport in molecular nanoribbons with perfect (atomically smooth) and rough (porous) edges, and in nanoribbons with strongly anharmonic periodic interatomic potentials. We show that the effects of quantum statistics of phonons are essential for the carbon nanotube in the whole temperature range T<500K, in which the values of the specific heat and thermal conductivity of the nanotube are considerably less than that obtained within the description based on classical statistics of phonons.
19 pages, 15 figures, 2 tables
References in corpus (3)
Cited by in corpus (13)
- Quantum thermodynamics of complex ferrimagnets
- Zero-Point Energy Leakage in Quantum Thermal Bath Molecular Dynamics Simulations
- Characterizing thermal conduction in polycrystalline graphene
- Magnetic field-controlled lattice thermal conductivity in MnBi2Te4
- Enhanced thermoelectric performance of carbon nanotubes at elevated temperature
- Quantum and classical spin dynamics across temperature scales in the S = 1/2 Heisenberg antiferromagnet
- Classical dynamics of the antiferromagnetic Heisenberg spin ladder
- Computing the thermal transport coefficient of neutral amorphous polymers using exact vibrational density of states: Comparison with experiments
- Nuclear quantum effects in molecular dynamics simulations
- Thermally-induced mimicry of quantum cluster excitations and implications for the magnetic transition in FePSe
- Magnon Spectrum of the Amorphous Ferromagnet CoP from Atomistic Spin Dynamics
- Modeling of second sound in carbon nanostructures
- Thermal conductivity of the chain with an asymmetric pair interaction