Graphene/hexagonal boron nitride (G/h-BN) heterostructure has attracted tremendous research efforts owing to its great potential for applications in nano-scale electronic devices. In such hybrid materials, tilt grain boundaries (GBs) between graphene and h-BN grains may have unique physical properties, which have not been well understood. Here we have conducted non-equilibrium molecular dynamics simulations to study the energetic and thermal properties of tilt GBs in G/h-BN heterostructures. The effect of misorientation angles of tilt GBs on both GB energy and interfacial thermal conductance are investigated
Simulation of thermal properties of graphene hetero-nanosheets is a key step in understanding their ...
We carried out molecular dynamics simulations at various temperatures to predict the thermal conduct...
Simulation of thermal properties of graphene hetero-nanosheets is a key step in understanding their...
Graphene/hexagonal boron nitride (G/h-BN) heterostructure has attracted tremendous research efforts ...
The interfacial thermal energy transport ability of graphene (GR)/hexagonal boron nitride (h-BN) het...
The interfacial thermal energy transport ability of graphene (GR)/hexagonal boron nitride (h-BN) het...
We study the interfacial thermal conductance of grain boundaries (GBs) between monolayer graphene an...
Thermal management is a critical task for highly integrated or high-power semiconductor devices. Low...
Funding Information: This work was supported by the National Key Research and Development Program of...
Enhancing thermal energy transport is critical for the applications of 2-dimensional materials. Here...
Enhancing thermal energy transport is critical for the applications of 2-dimensional materials. Here...
The quasi-three-dimensional effect induced by functional groups (FGo) and the in-plane stress and st...
Graphene, hexagonal boron nitride (h-BN), and their heterostructures are promising thermal interface...
We carried out molecular dynamics simulations at various temperatures to predict the thermal conduct...
Previous experimental and computational results have confirmed that the thermal conductivity of a tw...
Simulation of thermal properties of graphene hetero-nanosheets is a key step in understanding their ...
We carried out molecular dynamics simulations at various temperatures to predict the thermal conduct...
Simulation of thermal properties of graphene hetero-nanosheets is a key step in understanding their...
Graphene/hexagonal boron nitride (G/h-BN) heterostructure has attracted tremendous research efforts ...
The interfacial thermal energy transport ability of graphene (GR)/hexagonal boron nitride (h-BN) het...
The interfacial thermal energy transport ability of graphene (GR)/hexagonal boron nitride (h-BN) het...
We study the interfacial thermal conductance of grain boundaries (GBs) between monolayer graphene an...
Thermal management is a critical task for highly integrated or high-power semiconductor devices. Low...
Funding Information: This work was supported by the National Key Research and Development Program of...
Enhancing thermal energy transport is critical for the applications of 2-dimensional materials. Here...
Enhancing thermal energy transport is critical for the applications of 2-dimensional materials. Here...
The quasi-three-dimensional effect induced by functional groups (FGo) and the in-plane stress and st...
Graphene, hexagonal boron nitride (h-BN), and their heterostructures are promising thermal interface...
We carried out molecular dynamics simulations at various temperatures to predict the thermal conduct...
Previous experimental and computational results have confirmed that the thermal conductivity of a tw...
Simulation of thermal properties of graphene hetero-nanosheets is a key step in understanding their ...
We carried out molecular dynamics simulations at various temperatures to predict the thermal conduct...
Simulation of thermal properties of graphene hetero-nanosheets is a key step in understanding their...