Electroosmosis over charge-modulated surfaces with finite electrical double layer thicknesses: Asymptotic and numerical investigations

Ghosh, Uddipta ; Mandal, Shubhadeep ; Chakraborty, Suman (2017) Electroosmosis over charge-modulated surfaces with finite electrical double layer thicknesses: Asymptotic and numerical investigations Physical Review Fluids, 2 (6). ISSN 2469-990X

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Official URL: http://doi.org/10.1103/PhysRevFluids.2.064203

Related URL: http://dx.doi.org/10.1103/PhysRevFluids.2.064203

Abstract

Here we attempt to solve the fully coupled Poisson-Nernst-Planck-Navier-Stokes equations, to ascertain the influence of finite electric double layer (EDL) thickness on coupled charge and fluid dynamics over patterned charged surfaces. We go beyond the well-studied “weak-field” limit and obtain numerical solutions for a wide range of EDL thicknesses, applied electric field strengths, and the surface potentials. Asymptotic solutions to the coupled system are also derived using a combination of singular and regular perturbation, for thin EDLs and low surface potential, and good agreement between the two solutions is observed. Counterintuitively to common arguments, our analysis reveals that finite EDL thickness may either increase or decrease the “free-stream velocity” (equivalent to net throughput), depending on the strength of the applied electric field. We also unveil a critical EDL thickness for which the effect of finite EDL thickness on the free-stream velocity is the most prominent. Finally, we demonstrate that increasing the surface potential and the applied field tends to influence the overall flow patterns in the contrasting manners. These results may be of profound importance in developing a comprehensive theoretical basis for designing electro-osmotically actuated microfluidic mixtures.

Item Type:Article
Source:Copyright of this article belongs to American Physical Society
ID Code:134771
Deposited On:12 Jan 2023 04:10
Last Modified:12 Jan 2023 04:10

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