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接枝有末端带电聚电解质层的纳米通道中流动强度的非单调变化。

Non-monotonic variation of flow strength in nanochannels grafted with end-charged polyelectrolyte layers.

作者信息

Wu Peng, Sun Tao, Jiang Xikai

机构信息

College of Energy and Power Engineering, Inner Mongolia University of Technology Inner Mongolia Hohhot 010051 China

China-EU Institute of Clean and Renewable Energy, Huazhong University of Science and Technology Wuhan Hubei 430074 China.

出版信息

RSC Adv. 2022 Feb 2;12(7):4061-4071. doi: 10.1039/d1ra06601c. eCollection 2022 Jan 28.

Abstract

The electrokinetic transport of fluids, also called the electroosmotic flow (EOF), in micro/nanoscale devices occurs in promising applications such as electrokinetic energy conversion (EKEC) systems. Recently, EKEC systems grafted with end-charged polyelectrolyte (PE) layers (PELs) have been reported to exhibit higher efficiencies than those of intrinsic systems. Understanding the interplay between the end-charged PELs and electrical double layers (EDLs) on the EOF is crucial for designing highly efficient EKEC systems. The interplay between the end-charged PELs and EDLs on the strength of the EOF ( ) is studied by explicitly modeling the EOF through nanochannels grafted with end-charged PELs using atomic simulations. The variation of is examined for nanochannels grafted with PELs at various separations ( = 3.5-0.4 nm) to cover various conformations of PEs, inlcuding mushroom, semi-dilute brushes, and concentrated brushes. We find that follows a non-monotonic variation as decreases and this is correlated with the conformation of the PEs. Specifically, as decreases, decreases first in the mushroom regime ( = 3.5-2.0 nm), and then increases in the concentrated brush regime ( = 0.75-0.4 nm). Navigated by the continuum Navier-Stokes-Brinkman model, the above observations are rationalized by the competition between the driving effect from the spatial shift of ions in EDLs and the drag effect from PELs. The insights obtained in this work are important to guide the design of highly efficient EKEC systems by grafting end-charged PELs onto channel surfaces.

摘要

在微纳尺度设备中,流体的电动输运,也称为电渗流(EOF),在诸如电动能量转换(EKEC)系统等有前景的应用中会出现。最近,据报道,接枝有末端带电聚电解质(PE)层(PEL)的EKEC系统比固有系统表现出更高的效率。理解末端带电PEL与EOF上的双电层(EDL)之间的相互作用对于设计高效的EKEC系统至关重要。通过使用原子模拟对通过接枝有末端带电PEL的纳米通道中的EOF进行显式建模,研究了末端带电PEL与EDL对EOF强度( )的相互作用。研究了在不同间距( = 3.5 - 0.4 nm)下接枝有PEL的纳米通道中 的变化,以涵盖PE的各种构象,包括蘑菇状、半稀刷状和浓刷状。我们发现,随着 的减小, 呈现非单调变化,这与PE的构象相关。具体而言,随着 的减小, 在蘑菇状区域( = 3.5 - 2.0 nm)首先减小,然后在浓刷状区域( = 0.75 - 0.4 nm)增大。在连续介质的Navier - Stokes - Brinkman模型的指导下,上述观察结果通过EDL中离子空间位移的驱动效应与PEL的阻力效应之间的竞争得到合理解释。这项工作中获得的见解对于通过在通道表面接枝末端带电PEL来指导高效EKEC系统的设计很重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3523/8981053/0c807f518f81/d1ra06601c-f1.jpg

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