Thermal transport in nanocrystalline graphene investigated by approach-to-equilibrium molecular dynamics simulations
arXiv:1507.08927 · doi:10.1016/j.carbon.2015.09.070
Abstract
Approach-to-equilibrium molecular dynamics simulations have been used to study thermal transport in nanocrystalline graphene sheets. Nanostructured graphene has been created using an iterative process for grain growth from initial seeds with random crystallographic orientations. The resulting cells have been characterized by the grain size distribution based on the radius of gyration, by the number of atoms in each grain and by the number of atoms in the grain boundary. Introduction of nanograins with a radius of gyration of 1 nm has led to a significant reduction in the thermal conductivity to 3% of the value in single crystalline graphene. Analysis of the vibrational density of states has revealed a general reduction of the vibrational intensities and broadening of the peaks when nanograins are introduced which can be attributed to phonon scattering in the boundary layer. The thermal conductivity has been evaluated as a function of the grain size with increasing size up to 14 nm and it has been shown to follow an inverse rational function. The grain size dependent thermal conductivity could be approximated well by a function where transport is described by a connection in series of conducting elements and resistances (at boundaries).
9 pages, 9 figures
References in corpus (6)
- Universal Dynamic Conductivity and Quantized Visible Opacity of Suspended Graphene
- Micrometer-scale ballistic transport in encapsulated graphene at room temperature
- Control and Characterization of Individual Grains and Grain Boundaries in Graphene Grown by Chemical Vapor Deposition
- Length-dependent thermal conductivity in suspended single-layer graphene
- Anomalous Size Dependence of the Thermal Conductivity of Graphene Ribbons
- Mechanical properties of polycrystalline graphene based on a realistic atomistic model
Cited by in corpus (8)
- Amorphized graphene: A stiff material with low thermal conductivity
- Scaling Properties of Polycrystalline Graphene: A Review
- Kapitza thermal resistance across individual grain boundaries in graphene
- Electrical and thermal transport in coplanar polycrystalline graphene-hBN heterostructures
- Strong thermal transport along polycrystalline transition metal dichalcogenides revealed by multiscale modelling for MoS2
- Bimodal grain-size scaling of thermal transport in polycrystalline graphene from large-scale molecular dynamics simulations
- Growth, charge and thermal transport of flowered graphene
- Understanding Phonon Transport Properties Using Classical Molecular Dynamics Simulations