We introduce an analytical method to predict the slip length (L s) in cylindrical nanopores using equilibrium molecular dynamics (EMD) simulations, following the approach proposed by Sokhan and Quirke for planar channels [39]. Using this approach, we determined the slip length of water in carbon nanotubes (CNTs) of various diameters. The slip length predicted from our method shows excellent agreement with the results obtained from nonequilibrium molecular dynamics (NEMD) simulations. The data show a monotonically decreasing slip length with an increasing nanotube diameter. The proposed EMD method can be used to precisely estimate slip length in high slip cylindrical systems, whereas, L s calculated from NEMD is highly sensitive to the veloc...
We propose the use of the Navier–Stokes equations subject to partial-slip boundary conditions to sim...
We investigate the slip properties of water confined in graphite-like nanochannels by non-equilibriu...
We investigate the slip properties of water confined in graphite-like nanochannels by non-equilibriu...
We introduce an analytical method to predict the slip length (L s) in cylindrical nanopores using eq...
We introduce an analytical method to predict the slip length (L s) in cylindrical nanopores using eq...
Data for the flow rate of water in carbon nanopores is widely scattered, both in experiments and sim...
The hydrodynamic boundary condition is now a subject of greater interest than ever before, even thou...
Data for the flow rate of water in carbon nanopores is widely scattered, both in experiments and sim...
The purpose of this paper is threefold. First, we review the existing literature on flow rates of wa...
International audienceWe present Molecular Dynamics (MD) simulations of liquid water confined within...
We investigate the hydrodynamic boundary condition for simple nanofluidic systems such as argon and ...
Slip lengths reported from molecular dynamics (MD) simulations of water flow in graphene nanochannel...
Slip lengths reported from molecular dynamics (MD) simulations of water flow in graphene nanochannel...
Molecular dynamics and the lattice Boltzmann method (LBM) are combined as part of a multiscale proce...
Water transport through nanopores is widespread in the natural world and holds significant implicati...
We propose the use of the Navier–Stokes equations subject to partial-slip boundary conditions to sim...
We investigate the slip properties of water confined in graphite-like nanochannels by non-equilibriu...
We investigate the slip properties of water confined in graphite-like nanochannels by non-equilibriu...
We introduce an analytical method to predict the slip length (L s) in cylindrical nanopores using eq...
We introduce an analytical method to predict the slip length (L s) in cylindrical nanopores using eq...
Data for the flow rate of water in carbon nanopores is widely scattered, both in experiments and sim...
The hydrodynamic boundary condition is now a subject of greater interest than ever before, even thou...
Data for the flow rate of water in carbon nanopores is widely scattered, both in experiments and sim...
The purpose of this paper is threefold. First, we review the existing literature on flow rates of wa...
International audienceWe present Molecular Dynamics (MD) simulations of liquid water confined within...
We investigate the hydrodynamic boundary condition for simple nanofluidic systems such as argon and ...
Slip lengths reported from molecular dynamics (MD) simulations of water flow in graphene nanochannel...
Slip lengths reported from molecular dynamics (MD) simulations of water flow in graphene nanochannel...
Molecular dynamics and the lattice Boltzmann method (LBM) are combined as part of a multiscale proce...
Water transport through nanopores is widespread in the natural world and holds significant implicati...
We propose the use of the Navier–Stokes equations subject to partial-slip boundary conditions to sim...
We investigate the slip properties of water confined in graphite-like nanochannels by non-equilibriu...
We investigate the slip properties of water confined in graphite-like nanochannels by non-equilibriu...