We predict the bulk thermal conductivity of Lennard-Jones argon and Stillinger-Weber silicon using the Green-Kubo (GK) and direct methods in classical molecular dynamics simulations. While system-size-independent thermal conductivities can be obtained with less than 1000 atoms for both materials using the GK method, the linear extrapolation procedure [Schelling et al., Phys. Rev. B 65, 144306 (2002)] must be applied to direct method results for multiple system sizes. We find that applying the linear extrapolation procedure in a manner consistent with previous researchers can lead to an underprediction of the GK thermal conductivity (e.g., by a factor of 2.5 for Stillinger-Weber silicon at a temperature of 500 K). To understand this discrepa...
The mechanisms of thermal transport in defect-free silicon nanostructures are examined using a combi...
Funding Information: Y.S., Y.H., and H.B. acknowledge the support by the National Natural Science Fo...
Funding Information: Y.S., Y.H., and H.B. acknowledge the support by the National Natural Science Fo...
Equilibrium molecular dynamics (EMD) simulations through Green-Kubo formula (GKF) have been widely u...
International audienceThe length dependence of thermal conductivity over more than two orders of mag...
International audienceThe length dependence of thermal conductivity over more than two orders of mag...
Direct method is commonly used to compute the thermal conductivity of a nanoscale material after mol...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
submitted to Journal of Heat TransferThe thermal conductivity of nanometric objects or nanostructure...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
Nonequilibrium molecular dynamics simulation has been a powerful tool for studying the thermophysica...
The Green-Kubo relations have been widely utilized in equilibrium molecular dynamics (MD) simulation...
The evaluation of transport coefficients in extended systems, such as thermal conductivity or shear ...
The mechanisms of thermal transport in defect-free silicon nanostructures are examined using a combi...
The mechanisms of thermal transport in defect-free silicon nanostructures are examined using a combi...
Funding Information: Y.S., Y.H., and H.B. acknowledge the support by the National Natural Science Fo...
Funding Information: Y.S., Y.H., and H.B. acknowledge the support by the National Natural Science Fo...
Equilibrium molecular dynamics (EMD) simulations through Green-Kubo formula (GKF) have been widely u...
International audienceThe length dependence of thermal conductivity over more than two orders of mag...
International audienceThe length dependence of thermal conductivity over more than two orders of mag...
Direct method is commonly used to compute the thermal conductivity of a nanoscale material after mol...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
submitted to Journal of Heat TransferThe thermal conductivity of nanometric objects or nanostructure...
Atomic-level thermal transport is explored using lattice dynamics theory and molecular dynamics (MD)...
Nonequilibrium molecular dynamics simulation has been a powerful tool for studying the thermophysica...
The Green-Kubo relations have been widely utilized in equilibrium molecular dynamics (MD) simulation...
The evaluation of transport coefficients in extended systems, such as thermal conductivity or shear ...
The mechanisms of thermal transport in defect-free silicon nanostructures are examined using a combi...
The mechanisms of thermal transport in defect-free silicon nanostructures are examined using a combi...
Funding Information: Y.S., Y.H., and H.B. acknowledge the support by the National Natural Science Fo...
Funding Information: Y.S., Y.H., and H.B. acknowledge the support by the National Natural Science Fo...