首页> 外文期刊>Journal of Fluid Mechanics >Thermo-osmotic transport in nanochannels grafted with pH-responsive polyelectrolyte brushes modelled using augmented strong stretching theory
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Thermo-osmotic transport in nanochannels grafted with pH-responsive polyelectrolyte brushes modelled using augmented strong stretching theory

机译:使用增强强度拉伸理论建模的PH响应聚电解质刷接枝的纳米脉冲传输

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摘要

In this paper, we develop a theory to establish that the thermo-osmotic (TOS) effects, induced by the application of an axial temperature gradient, lead to a massive enhancement in liquid transport in nanochannels grafted with charged polyelectrolyte (PE) brushes. We quantify the TOS transport by quantifying the induced electric field and the induced TOS flow field. The different components of the electric field, namely the ionic component, the thermal component and the osmotic component, as well as the contributions of different ions to these components, are quantified. Furthermore, we express the TOS velocity as a combination of chemiosmotic (COS), thermal and electro-osmotic (EOS) components. The COS and the thermal components augment each other and the overall strength and direction of the TOS flow are dictated by the direction and the relative strength of the EOS component. Most importantly, we compare the cases of brush-grafted nanochannels with those of the brush-free nanochannels of identical surface charge densities: the TOS transport is massively augmented in the brush-grafted nanochannels attributed to the combination of the localization of the electric double layer (EDL) (and hence any body force that depends on the EDL charge density) away from the nanochannel wall (i.e. the location of the maximum drag force) and the presence of a possible molecular slip (experienced by the liquid) along the brush surface.
机译:在本文中,我们发展了一种理论来证明,轴向温度梯度的应用引起的热渗透效应(TOS)会导致接枝了带电聚电解质(PE)刷的纳米通道中液体传输的大幅增强。我们通过量化感应电场和感应TOS流场来量化TOS传输。对电场的不同成分,即离子成分、热成分和渗透成分,以及不同离子对这些成分的贡献进行了量化。此外,我们将TOS速度表示为化学渗透(COS)、热和电渗(EOS)成分的组合。COS和热分量相互增强,TOS流的整体强度和方向由EOS分量的方向和相对强度决定。最重要的是,我们比较了具有相同表面电荷密度的刷状接枝纳米通道和无刷纳米通道的情况:由于双电层(EDL)(以及依赖于EDL电荷密度的任何体力)远离纳米通道壁的局部化,TOS传输在刷状接枝纳米通道中大量增强(即最大阻力的位置)以及刷子表面可能存在的分子滑移(液体所经历的)。

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