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A current-driven nanometer water pump

机译:电流驱动的纳米水泵

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The design of a water pump, which has huge potential for applications in nanotechnology and daily life, is the dream of many scientists. In this paper, we successfully design a nanometer water pump by using molecular dynamics simulations. Ions of either sodium or chlorine in a narrow channel will generate electric current under electric fields, which then drives the water through a wider channel, similar to recent experimental setups. Considerable water flux is achieved within small field strengths that are accessible by experimentation. Of particular interest, is that for sodium the water flux increases almost linearly with field strengths; while for chlorine there exists a critical field strength, the water flux exhibits a plateau before the critical value and increases linearly after it. This result follows the behavior of ion velocity, which is related to friction behavior. We also estimate the power and energy consumption for such a pump, and compare it to the macroscopic mechanical pumps. A further comparison suggests that different ions will have different pumping abilities. This study not only provides new, significant results with possible connection to existing research, but has tremendous potential application in the design of nanofluidic devices.
机译:水泵的设计在纳米技术和日常生活中具有巨大的应用潜力,这是许多科学家的梦想。在本文中,我们通过分子动力学模拟成功设计了纳米水泵。类似于最近的实验装置,狭窄通道中的钠或氯离子将在电场下产生电流,然后驱动水通过更宽的通道。在较小的场强范围内可以达到相当大的水通量,这可以通过实验获得。特别令人感兴趣的是,对于钠,水通量几乎与场强呈线性关系。对于氯,存在临界场强,水通量在临界值之前呈现平稳状态,在临界值之后呈线性增加。该结果遵循离子速度的行为,该行为与摩擦行为有关。我们还估算了此类泵的功率和能耗,并将其与宏观机械泵进行比较。进一步的比较表明,不同的离子将具有不同的泵浦能力。这项研究不仅可以提供与现有研究可能相关的新的重要结果,而且在纳米流体装置的设计中具有巨大的潜在应用。

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