The thermal coupling at water-solid interfaces is a key factor in controlling thermal resistance and the performance of nanoscale devices. This is especially important across the recently engineered nano-composite structures composed of a graphene-coated-metal surface. In this paper, a series of molecular dynamics simulations were conducted to investigate Kapitza length at the interface of liquid water and nano-composite surfaces of graphene-coated-Cu(1 1 1). We found that Kapitza length gradually increased and converged to the value measured on pure graphite surface with the increase of the number of graphene layers inserted on the Cu surface. Different than the earlier hypothesis on the "transparency of graphene," the Kapitza length at th...
This paper investigates the effects of a nanofluidic channel width made out of graphene on the therm...
We have investigated interfacial thermal resistance (ITR) between single-layer graphene and Cu subst...
Very high thermal conductivity of carbon nanotube (CNT) makes it an obvious choice in electronic coo...
The thermal coupling at water-solid interfaces is a key factor in controlling thermal resistance and...
International audienceHeat transfer across solid-liquid interface is attracting increasing attention...
The paper presents the results of Molecular Dynamics (MD) studies of the thermal properties of Cu an...
International audienceThe search for materials with high thermal resistance has promising applicatio...
Interfaces are ubiquitous at the nanoscale in a range of materials and typically play a key role in ...
The Kapitza resistance (RK) between few-layer graphene (FLG) and water was studied using molecular d...
Copper is often used as a heat-dissipating material due to its high thermal conductivity. In order t...
The Kapitza resistance (<i>R</i><sub>K</sub>) between few-layer graphene (FLG) and water was studied...
Molecular dynamics simulations were employed to understand the improved thermal conductivity and wat...
Graphene-copper nanolayered composites have received research interest as promising packaging materi...
The interface between functional nanostructures and host substrates is of pivotal importance in the ...
We investigate here heat transfer across interfaces consisting of single- and few-layer graphene she...
This paper investigates the effects of a nanofluidic channel width made out of graphene on the therm...
We have investigated interfacial thermal resistance (ITR) between single-layer graphene and Cu subst...
Very high thermal conductivity of carbon nanotube (CNT) makes it an obvious choice in electronic coo...
The thermal coupling at water-solid interfaces is a key factor in controlling thermal resistance and...
International audienceHeat transfer across solid-liquid interface is attracting increasing attention...
The paper presents the results of Molecular Dynamics (MD) studies of the thermal properties of Cu an...
International audienceThe search for materials with high thermal resistance has promising applicatio...
Interfaces are ubiquitous at the nanoscale in a range of materials and typically play a key role in ...
The Kapitza resistance (RK) between few-layer graphene (FLG) and water was studied using molecular d...
Copper is often used as a heat-dissipating material due to its high thermal conductivity. In order t...
The Kapitza resistance (<i>R</i><sub>K</sub>) between few-layer graphene (FLG) and water was studied...
Molecular dynamics simulations were employed to understand the improved thermal conductivity and wat...
Graphene-copper nanolayered composites have received research interest as promising packaging materi...
The interface between functional nanostructures and host substrates is of pivotal importance in the ...
We investigate here heat transfer across interfaces consisting of single- and few-layer graphene she...
This paper investigates the effects of a nanofluidic channel width made out of graphene on the therm...
We have investigated interfacial thermal resistance (ITR) between single-layer graphene and Cu subst...
Very high thermal conductivity of carbon nanotube (CNT) makes it an obvious choice in electronic coo...