Molecular dynamics simulations on water permeation through hourglass-shaped nanopores with varying pore geometry

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초록

We investigate the transport of water in hourglass-shaped nanopores using molecular dynamics (MD) simulations. We focus on the hydrodynamic effect by exploiting conical entrance/exit effects and utilizing the single-file fast water flow by limiting the cylinder diameter. We assume that the transport ability facilitated by the hourglass-shaped nanopores can be improved by varying the combination of cone angle and cylindrical pore length. The maximized results for transport properties with geometric parameters, quantified as number flux and osmotic permeability, prove that our assumption is reasonable. Further analysis for the validity of our design concerns the distribution of water inside the pore, e.g., the friction force between water molecules and the pore. Maximization of pore geometry provides a basis for improving the flux and velocity of water transport through nanoscale structural design. (C) 2015 Elsevier B.V. All rights reserved.

키워드

Water permeationCone angleCylinder pore lengthMaximized nanopore structureHydrodynamic effectCARBON NANOTUBESION SELECTIVITYAQUAPORIN CHIPSODIUM-IONSTRANSPORTPOTASSIUMCHANNELFLOW
제목
Molecular dynamics simulations on water permeation through hourglass-shaped nanopores with varying pore geometry
저자
Tang, DaiYoo, Yeong-EunKim, Daejoong
DOI
10.1016/j.chemphys.2015.04.002
발행일
2015-05-12
유형
Article
저널명
Chemical Physics
453
페이지
13 ~ 19