Non-equilibrium molecular dynamics simulations are performed to investigate how changing the number of structural defects in the wall of a (7,7) single-walled carbon nanotube (CNT) affects water transport and internal fluid dynamics. Structural defects are modelled as vacancy sites (missing carbon atoms). We find that, while fluid flow rates exceed continuum expectations, increasing numbers of defects lead to significant reductions in fluid velocity and mass flow rate. The inclusion of such defects causes a reduction in the water density inside the nanotubes and disrupts the nearly frictionless water transport commonly attributed to CNTs
Using non-equilibrium molecular dynamics simulations, we investigate the effect of wall roughness on...
Water continually generates vast research interest due to its many unusual properties, not least of ...
Extraordinarily fast transport of water in carbon nanotubes (CNTs) in recent experiments has been ge...
The advent of carbon nanotube (CNT) synthesis has created exciting new oppor- tunities in fluid dyna...
Non-equilibrium molecular dynamics simulations are performed to investigate water transport through ...
Non-equilibrium molecular dynamics simulations are used to investigate water transport through (7,7)...
Non-equilibrium molecular dynamics simulations are used to investigate water transport through (7,7)...
Recent discoveries of various forms of nano-materials have stimulated research on their applications...
We conduct molecular dynamics simulations to study the effect of the curvature induced static dipole...
Water transport through short single-walled (6, 6) carbon nanotubes (CNTs) was investigated with ab ...
Controlling water transport via an empty cavity can achieve unexpected properties for various applic...
Water transport inside carbon nano-tubes (CNTs) has attracted considerable attention due to its nano...
Using non-equilibrium molecular dynamics simulations, we investigate the effect of wall roughness on...
We use molecular dynamics simulations to study the diffusion of water inside deformed carbon nanotu...
Water continually generates vast research interest due to its many unusual properties, not least of ...
Using non-equilibrium molecular dynamics simulations, we investigate the effect of wall roughness on...
Water continually generates vast research interest due to its many unusual properties, not least of ...
Extraordinarily fast transport of water in carbon nanotubes (CNTs) in recent experiments has been ge...
The advent of carbon nanotube (CNT) synthesis has created exciting new oppor- tunities in fluid dyna...
Non-equilibrium molecular dynamics simulations are performed to investigate water transport through ...
Non-equilibrium molecular dynamics simulations are used to investigate water transport through (7,7)...
Non-equilibrium molecular dynamics simulations are used to investigate water transport through (7,7)...
Recent discoveries of various forms of nano-materials have stimulated research on their applications...
We conduct molecular dynamics simulations to study the effect of the curvature induced static dipole...
Water transport through short single-walled (6, 6) carbon nanotubes (CNTs) was investigated with ab ...
Controlling water transport via an empty cavity can achieve unexpected properties for various applic...
Water transport inside carbon nano-tubes (CNTs) has attracted considerable attention due to its nano...
Using non-equilibrium molecular dynamics simulations, we investigate the effect of wall roughness on...
We use molecular dynamics simulations to study the diffusion of water inside deformed carbon nanotu...
Water continually generates vast research interest due to its many unusual properties, not least of ...
Using non-equilibrium molecular dynamics simulations, we investigate the effect of wall roughness on...
Water continually generates vast research interest due to its many unusual properties, not least of ...
Extraordinarily fast transport of water in carbon nanotubes (CNTs) in recent experiments has been ge...