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Orientations of special water dipoles that accelerate water molecules exiting from carbon nanotube

Orientations of special water dipoles that accelerate water molecules exiting from carbon nanotube
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摘要 One-dimensional ordered water molecules entering and exiting from a carbon nanotube with an appropriate radius are studied with molecular dynamics simulations.It can be found that a water molecule near the nanotube end is more likely to be expelled from the nanotube if its dipole is almost perpendicular to the nanotube axis.The key to this observation is that those water molecules are closer to the wall of the nanotube away from the equilibrium position of the Lennar-Jones (LJ) potential.Thus,the interaction energy for those water molecules is relatively high.There are two particular structures of the perpendicular water molecule depending on the dipole direction of the adjacent water molecule in the nanotube.Although the probabilities of these structures are quite small,their contributions to the net flux across the nanotube end are approximately equal to the predominant structures.The present findings further show the possibility of controlling the water flow by regulating the dipole directions of the water molecules inside the nanochannels. One-dimensional ordered water molecules entering and exiting from a carbon nanotube with an appropriate radius are studied with molecular dynamics simulations.It can be found that a water molecule near the nanotube end is more likely to be expelled from the nanotube if its dipole is almost perpendicular to the nanotube axis.The key to this observation is that those water molecules are closer to the wall of the nanotube away from the equilibrium position of the Lennar-Jones (LJ) potential.Thus,the interaction energy for those water molecules is relatively high.There are two particular structures of the perpendicular water molecule depending on the dipole direction of the adjacent water molecule in the nanotube.Although the probabilities of these structures are quite small,their contributions to the net flux across the nanotube end are approximately equal to the predominant structures.The present findings further show the possibility of controlling the water flow by regulating the dipole directions of the water molecules inside the nanochannels.
出处 《Applied Mathematics and Mechanics(English Edition)》 SCIE EI 2011年第9期1101-1108,共8页 应用数学和力学(英文版)
基金 supported by the National Natural Science Foundation of China (No. 10825520) the Innovation Program of Shanghai Municipal Education Commission (No. 11YZ20)
关键词 WATER carbon nanotube single-file water chain Lennard-Jones (LJ) interaction water carbon nanotube single-file water chain Lennard-Jones (LJ) interaction
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参考文献31

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