Electrostatic interactions in nanoscale systems can influence the heat transfer mechanism and interfacial properties. This study uses molecular dynamics simulations to investigate the impact of various electrostatic interactions on the Kapitza resistance ($R_k$) on a hexagonal boron nitride-water system. The Kapitza resistance at hexagonal boron nitride nanotube (hBNNT)-water interface reduces with an increase in diameter of the nanotube due to more aggregation of water molecules per unit surface area. An increase in the partial charges on boron and nitride caused the reduction in $R_k$. With the increase in partial charge, a better hydrogen bonding between hBNNT and water was observed, whereas the structure and order of the water molecules...
Hexagonal Boron Nitride and Carbon share the same allotropic forms of nanomaterials such as atomical...
International audienceIn this work, the relationship between the water flux through nanoporous two-d...
Friction is one of the main sources of dissipation at liquid water/solid interfaces. Despite recent ...
Understanding the behavior of water contacting two-dimensional materials, such as hexagonal boron ni...
Despite a recent flurry of experimental and simulation studies, an accurate estimate of the interact...
Very high thermal conductivity of carbon nanotube (CNT) makes it an obvious choice in electronic coo...
International audienceThe possibility to control electrokinetic transport through carbon and hexagon...
We investigate the wetting and frictional behavior of polar (water and ethylene glycol) and nonpolar...
In a molecular dynamics study of water based nanofluids, we show that a hydration layer is formed at...
International audienceHeat transfer across solid-liquid interface is attracting increasing attention...
Water transport through carbon nanotubes (CNTs) and boron nitride nanotubes (BNNTs) has attracted gr...
International audienceIn this work, molecular dynamics simulations were used to determine the surfac...
We study the electrokinetic transport behavior of water molecules and ions in hydrophobic graphene n...
In this study, molecular dynamics simulations are used to investigate water transport mechanisms thr...
Carbon nanotube (CNT) have been known to increase the heat transfer at the solid-liquid interfaces, ...
Hexagonal Boron Nitride and Carbon share the same allotropic forms of nanomaterials such as atomical...
International audienceIn this work, the relationship between the water flux through nanoporous two-d...
Friction is one of the main sources of dissipation at liquid water/solid interfaces. Despite recent ...
Understanding the behavior of water contacting two-dimensional materials, such as hexagonal boron ni...
Despite a recent flurry of experimental and simulation studies, an accurate estimate of the interact...
Very high thermal conductivity of carbon nanotube (CNT) makes it an obvious choice in electronic coo...
International audienceThe possibility to control electrokinetic transport through carbon and hexagon...
We investigate the wetting and frictional behavior of polar (water and ethylene glycol) and nonpolar...
In a molecular dynamics study of water based nanofluids, we show that a hydration layer is formed at...
International audienceHeat transfer across solid-liquid interface is attracting increasing attention...
Water transport through carbon nanotubes (CNTs) and boron nitride nanotubes (BNNTs) has attracted gr...
International audienceIn this work, molecular dynamics simulations were used to determine the surfac...
We study the electrokinetic transport behavior of water molecules and ions in hydrophobic graphene n...
In this study, molecular dynamics simulations are used to investigate water transport mechanisms thr...
Carbon nanotube (CNT) have been known to increase the heat transfer at the solid-liquid interfaces, ...
Hexagonal Boron Nitride and Carbon share the same allotropic forms of nanomaterials such as atomical...
International audienceIn this work, the relationship between the water flux through nanoporous two-d...
Friction is one of the main sources of dissipation at liquid water/solid interfaces. Despite recent ...