Anomalous electrohydrodynamic cross-stream particle migration

Author:

Abdorahimzadeh Seyedamirhosein1ORCID,Bölükkaya Zikrullah1ORCID,Vainio Seppo J.1ORCID,Liimatainen Henrikki2ORCID,Elbuken Caglar13ORCID

Affiliation:

1. Disease Networks Research Unit, Faculty of Biochemistry and Molecular Medicine, University of Oulu 1 , P. O. Box 5400, FI-90014 Oulu, Finland

2. Fiber and Particle Engineering Research Unit, Faculty of Technology, University of Oulu 2 , P. O. Box 4300, FI-90014 Oulu, Finland

3. Biomedicine Research Unit, Faculty of Medicine, University of Oulu 3 , P. O. Box 5000, FI-90014 Oulu, Finland

Abstract

Particle cross-stream migration in electrohydrodynamic microfluidic systems exhibits intriguing behaviors, which makes it interesting when viewed from a fundamental perspective and promising for nanoparticle focusing and separation applications. So far, particle behavior in such systems has been explained with the slip-induced lift force model (Saffman model), which predicts particle central or side focusing based on the direction of electric field and fluid flow. However, in our previous work, we observed particle migration patterns that did not adhere to the prediction of the Saffman model. In this work, we further studied this novel particle lateral migration behavior, which we termed the “anti-Saffman” behavior. We experimentally investigated how changing the conductivity of the suspending medium influences particle behavior and quantitatively measured the net lateral force experienced by the particles. Then, we compared this net force with the prediction of the relevant lift force models in the literature. We concluded that the anti-Saffman behavior is positively correlated with medium conductivity and shear rate (∝γ̇2). Furthermore, the comparison with the existing force models revealed that none of them can predict the experimentally observed particle lift. The net lift predicted by hydrodynamic lift models indicated that the underlying mechanism behind our experiments also potentially has a hydrodynamic origin. We believe this phenomenon offers the possibility of manipulating and separating nanoparticles suspended in standard aqueous electrolyte solutions, which makes it applicable to various biological samples.

Funder

University of Oulu Kvantum Institute

University of Oulu, Profi5

Publisher

AIP Publishing

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