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Control of Unidirectional Transport of Single-File Water Molecules through Carbon Nanotubes in an Electric Field

机译:在电场中控制单分子水分子通过碳纳米管的单向传输控制

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The transport of water molecules through nanopores is not only crucial to biological activities but also useful for designing novel nanofluidic devices. Despite considerable effort and progress that has been made, a controllable and unidirectional water flow is still difficult to achieve and the underlying mechanism is far from being understood. In this paper, using molecular dynamics simulations, we systematically investigate the effects of an external electric field on the transport of single-file water molecules through a carbon nanotube (CNT). We find that the orientation of water molecules inside the CNT can be well-tuned by the electric field and is strongly coupled to the water flux. This orientation-induced water flux is energetically due to the asymmetrical water?water interaction along the CNT axis. The wavelike water density profiles are disturbed under strong field strengths. The frequency of flipping for the water dipoles will decrease as the field strength is increased, and the flipping events vanish completely for the relatively large field strengths. Most importantly, a critical field strength Ec related to the water flux is found. The water flux is increased as E is increased for E ≤ Ec, while it is almost unchanged for E > Ec. Thus, the electric field offers a level of governing for unidirectional water flow, which may have some biological applications and provides a route for designing efficient nanopumps.
机译:水分子通过纳米孔的运输不仅对生物活性至关重要,而且对设计新型纳米流体装置很有用。尽管已经做出了相当大的努力和进步,但是仍然难以实现可控的单向水流,并且根本的机理尚不清楚。在本文中,我们使用分子动力学模拟系统地研究了外部电场对单文件水分子通过碳纳米管(CNT)传输的影响。我们发现,碳纳米管内水分子的取向可以通过电场很好地调节,并且与水通量密切相关。这种定向诱导的水通量在能量上是由于沿着CNT轴的不对称水-水相互作用。波浪形的水密度分布在强场强作用下受到干扰。水偶极子的翻转频率将随着场强的增加而降低,并且翻转事件对于较大的场强将完全消失。最重要的是,发现了与水通量有关的临界场强Ec。当E≤Ec时,随着E的增加,水通量增加,而当E> Ec时,水通量几乎不变。因此,电场为单向水流提供了一定的控制水平,这可能具有某些生物学应用,并为设计有效的纳米泵提供了途径。

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