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Interface nanoparticle control of a nanometer water pump

机译:纳米水泵的接口纳米粒子控制

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摘要

Nanoparticles are highly versatile and exhibit broad applications in tuning material properties. Herein, we show through molecular dynamics simulations the possibility of a nanometer water pump, driven by the motion of nanoparticles (NPs) on a membrane surface. Surprisingly, considerable net water flux can be induced through a carbon nanotube (CNT) that is perpendicular to the NP motion. The water transport can occur in a highly controllable fashion, not only by using a single NP with different forces, but also by varying the CNT length or the NP number. Specifically, for a single NP, the water flow and flux are found to increase linearly with an increase in force, following the same behavior of NP velocity. Inversely, the water translocation time exhibits a linear decrease. We further revealed the unique relation between the water flow and occupancy divided by the translocation time. The CNT length can significantly screen the thermal fluctuation of an outside water reservoir, leading to an increase in the water flux and subsequent unidirectional transport. More interestingly, under moderate force, the water flow and flux demonstrate maximum behaviors with an increase in NP number, co-determined by the NP velocity and water occupancy. The maximum location shifts to the lower NP number region for a larger force. We also identify two CNT states that correspond to low water flow. Our results provide a significant new method to pump water molecules through a CNT channel, which is helpful for the design of controllable nanofluidic devices.
机译:纳米颗粒高度通用,在调整材料特性方面表现出广泛的应用。在此,我们通过分子动力学模拟纳米水泵的可能性,由纳米颗粒(NPS)在膜表面上的运动驱动。令人惊讶的是,可以通过垂直于NP运动的碳纳米管(CNT)诱导相当大的净水通量。水运输可以以高度可控的方式发生,不仅通过使用具有不同力的单个NP,而且还通过改变CNT长度或NP编号。具体地,对于单个NP,在NP速度的相同行为之后,发现水流和通量随着力的增加而导致力增加。相反,水易位时间表现出线性减少。我们进一步揭示了水流与占用之间的独特关系除以易位时间。 CNT长度可以显着筛选外部水库的热波动,导致水通量增加和随后的单向运输。更有趣的是,在中等力量下,水流和助焊剂表现出最大的行为,增加了NP号,由NP速度和水占用共同确定。最大位置转移到较大的力的下部NP编号区域。我们还确定两个与低水流量相对应的CNT状态。我们的结果提供了一种通过CNT通道泵浦水分子的重要方法,这有助于设计可控纳米流体装置。

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    Nanjing Univ Sci &

    Technol Dept Appl Phys Nanjing 210094 Jiangsu Peoples R China;

    Nanjing Univ Sci &

    Technol Dept Appl Phys Nanjing 210094 Jiangsu Peoples R China;

    Nanjing Univ Sci &

    Technol Dept Appl Phys Nanjing 210094 Jiangsu Peoples R China;

    Nanjing Univ Sci &

    Technol Dept Appl Phys Nanjing 210094 Jiangsu Peoples R China;

    Nanjing Univ Sci &

    Technol Dept Appl Phys Nanjing 210094 Jiangsu Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理学;化学;
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