Issue 14, 2024

Enabling the characterization of the nonlinear electrokinetic properties of particles using low voltage

Abstract

Insulator-based electrokinetically driven microfluidic devices stimulated with direct current (DC) voltages are an attractive solution for particle separation, concentration, or isolation. However, to design successful particle manipulation protocols, it is mandatory to know the mobilities of electroosmosis, and linear and nonlinear electrophoresis of the microchannel/liquid/particle system. Several techniques exist to characterize the mobilities of electroosmosis and linear electrophoresis. However, only one method to characterize the mobility of nonlinear electrophoresis has been thoroughly assessed, which generally requires DC voltages larger than 1000 V and measuring particle velocity in a straight microchannel. Under such conditions, Joule heating, electrolysis, and the DC power source cost become a concern. Also, measuring particle velocity at high voltages is noisy, limiting characterization quality. Here we present a protocol—tested on 2 μm polystyrene particles—for characterizing the mobility of nonlinear electrophoresis of the liquid/particle system using a DC voltage of only 30 V and visual inspection of particle dynamics in a microchannel featuring insulating obstacles. Multiphysics numerical modelling was used to guide microchannel design and to correlate particle location during an experiment with electric field intensity. The method was validated against the conventional characterization protocol, exhibiting excellent agreement while significantly reducing measurement noise and experimental complexity.

Graphical abstract: Enabling the characterization of the nonlinear electrokinetic properties of particles using low voltage

Supplementary files

Article information

Article type
Paper
Submitted
09 Apr 2024
Accepted
03 Jun 2024
First published
04 Jun 2024

Analyst, 2024,149, 3839-3849

Enabling the characterization of the nonlinear electrokinetic properties of particles using low voltage

J. M. de los Santos-Ramirez, C. A. Mendiola-Escobedo, J. M. Cotera-Sarabia, R. C. Gallo-Villanueva, R. Martinez-Duarte and V. H. Perez-Gonzalez, Analyst, 2024, 149, 3839 DOI: 10.1039/D4AN00538D

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