In this study, we perform non-equilibrium molecular dynamics simulations to investigate phonon heat transport in a two-dimensional superlattice with equal-sized domains of graphene and phagraphene. Ef fects on conductivity are examined in relation to modifications of domain sizes, the length of employed nanoribbons and temperature differences between the thermal baths used with the superlattices. We have determined that effective thermal conductivity reaches a minimum value of 155 W/mK for ribbons with a superlattice period of 12.85 nm. This minimum thermal conductivity of graphene-phagraphene superlattices at infinite length is approximately 5%, of pure graphene thermal conductivity, and ≈ 50% of phagraphene thermal conductivity. Min...
We characterize the thermal conductivity of graphite, monolayer graphene, graphane, fluorographane,...
This article reviews recent numerical studies of thermal transport in graphene, with a focus on mole...
doi:10.1088/1367-2630/11/8/000000 Abstract. We review the results of our experimental investigation ...
Graphene exhibits extraordinary electronic and mechanical properties, and extremely high thermal con...
Graphene exhibits extraordinary electronic and mechanical properties, and extremely high thermal con...
International audienceThrough nonequilibrium molecular dynamics simulations, we report the direct nu...
International audienceThe value measured in the amorphous structure with the same chemical compositi...
Through nonequilibrium molecular dynamics simulations, we report the direct numerical evidence of th...
Two-dimensional materials have unusual phonon spectra due to the presence of flexural (out-of-plane)...
Two-dimensional materials have unusual phonon spectra due to the presence of flexural (out-of-plane)...
Coherent phonon heat conduction has recently been confirmed experimentally in superlattice structure...
The study of graphene thermal conductivity is of great importance, as its anomalous thermal and elec...
In the sample size domain so far explored, the thermal conductivity of graphene shows an intriguing ...
Over the last decade, substantial attention has been paid to novel nanostructures based on two-dimen...
We characterize the thermal conductivity of graphite, monolayer graphene, graphane, fluorographane, ...
We characterize the thermal conductivity of graphite, monolayer graphene, graphane, fluorographane,...
This article reviews recent numerical studies of thermal transport in graphene, with a focus on mole...
doi:10.1088/1367-2630/11/8/000000 Abstract. We review the results of our experimental investigation ...
Graphene exhibits extraordinary electronic and mechanical properties, and extremely high thermal con...
Graphene exhibits extraordinary electronic and mechanical properties, and extremely high thermal con...
International audienceThrough nonequilibrium molecular dynamics simulations, we report the direct nu...
International audienceThe value measured in the amorphous structure with the same chemical compositi...
Through nonequilibrium molecular dynamics simulations, we report the direct numerical evidence of th...
Two-dimensional materials have unusual phonon spectra due to the presence of flexural (out-of-plane)...
Two-dimensional materials have unusual phonon spectra due to the presence of flexural (out-of-plane)...
Coherent phonon heat conduction has recently been confirmed experimentally in superlattice structure...
The study of graphene thermal conductivity is of great importance, as its anomalous thermal and elec...
In the sample size domain so far explored, the thermal conductivity of graphene shows an intriguing ...
Over the last decade, substantial attention has been paid to novel nanostructures based on two-dimen...
We characterize the thermal conductivity of graphite, monolayer graphene, graphane, fluorographane, ...
We characterize the thermal conductivity of graphite, monolayer graphene, graphane, fluorographane,...
This article reviews recent numerical studies of thermal transport in graphene, with a focus on mole...
doi:10.1088/1367-2630/11/8/000000 Abstract. We review the results of our experimental investigation ...