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A Nanometer Water Pump Induced by the Brownian and Non-Brownian Motion of a Graphene Sheet on a Membrane Surface

机译:膜表面上石墨烯片的布朗运动和非布朗运动引起的纳米水泵

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摘要

Energy-saving water pump and efficient semipermeable membranes are the cores of reverse osmosis technology. Applying nanotechnology to improve the performance is a fashion in recent years. Based on the competitive effect of water’s spontaneous infiltration of two sides of a carbon nanotube, we design a water pump that makes use of the natural permeability by weakening one side’s competitiveness based on a small graphite sheet laying on the membrane. According to molecular dynamic simulations, continues net flux is observed. The motion mode of the sheet is the key for the performance. For the pure Brownian motion without any dynamical load, we find two water molecules per nanosecond flux, while the flux induced by the unidirectional motion can be several times enhanced, depending on the external force. The Brownian motion is similar to the physical mechanism of osmotic pressure, and the unidirectional motion shows great performance that has huge applications for reverse osmosis. Our work creatively proposes a new strategy to pump water molecules crossing though a nanochannel, inspiring for nanofluidic device designers.
机译:节能水泵和高效的半透膜是反渗透技术的核心。近年来,应用纳米技术来改善性能是一种时尚。基于水自发渗透到碳纳米管两侧的竞争影响,我们设计了一种水泵,该泵利用天然的渗透性通过在膜上放置一块小的石墨片而削弱了一侧的竞争力。根据分子动力学模拟,观察到连续的净通量。纸张的运动模式是演奏的关键。对于没有任何动态载荷的纯布朗运动,我们发现每纳秒通量有两个水分子,而单向运动引起的通量可以提高几倍,具体取决于外力。布朗运动类似于渗透压的物理机制,并且单向运动显示出出色的性能,在反渗透方面具有巨大的应用。我们的工作创造性地提出了一种新的策略来泵送水分子穿过一个纳米通道,从而激发了纳米流体设备设计人员的灵感。

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