School of Physical and Mathematical Sciences, Nanjing Tech University, Nanjing, P. R. China.
Key Laboratory of Thermo-Fluid Science and Engineering of MOE, Xi'an Jiaotong University, Xi'an, P. R. China.
Electrophoresis. 2020 Jun;41(10-11):811-820. doi: 10.1002/elps.201900466. Epub 2020 Apr 6.
Ion concentration polarization (ICP) imposes remarkable adverse effects on the energy conversion performance of the pressure-driven electrokinetic (EK) flows through a capillary system that can be equivalently treated as a battery. An optimized dimensionless numerical method is proposed in this study to investigate the causes and the effects of the ICP. Results show that remarkable ICP phenomena are induced under certain conditions such as high applied pressure, high surface charge density, and small inversed Debye length at dimensionless values of 6000, -10, and 0.5. Meanwhile, different factors influence the ICP and the corresponding electric properties in different ways. Particularly for the overall electric resistance, the applied pressure and the surface charge density mainly affect the variation amplitude and the level of the overall electric resistance when varying the output electric potential, respectively. Differently, the Debye length affects the overall electric resistance in both aspects. Ultimately, the induced ICP leads to significant nonlinear current-potential curves.
离子浓差极化(ICP)对压力驱动电动(EK)流在毛细管系统中的能量转换性能产生显著的不利影响,这种毛细管系统可等效为电池。本研究提出了一种优化的无量纲数值方法来研究 ICP 的原因和影响。结果表明,在某些条件下会产生显著的 ICP 现象,如高施加压力、高表面电荷密度和无量纲值为 6000、-10 和 0.5 时的小反向德拜长度。同时,不同的因素以不同的方式影响 ICP 和相应的电特性。特别是对于总电阻,施加压力和表面电荷密度主要通过改变输出电势来影响总电阻的变化幅度和水平,而德拜长度则在两个方面都影响总电阻。最终,诱导的 ICP 导致了显著的非线性电流-电位曲线。