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Electrophoretic motion of hydrophobic spherical particles in nanopore : characteristics, separation, and resistive pulse sensing

Shafiei Souderjani, Ali; Bakouei, Mostafa; Saidi, Mohammad Hassan; Taghipoor, Mojtaba (2023-02-09)

 
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https://doi.org/10.1063/5.0136454

Shafiei Souderjani, Ali
Bakouei, Mostafa
Saidi, Mohammad Hassan
Taghipoor, Mojtaba
American Institute of Physics
09.02.2023

Ali Shafiei Souderjani, Mostafa Bakouei, Mohammad Hassan Saidi, and Mojtaba Taghipoor , "Electrophoretic motion of hydrophobic spherical particles in nanopore: Characteristics, separation, and resistive pulse sensing", Physics of Fluids 35, 022005 (2023) https://doi.org/10.1063/5.0136454

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© AIP Publishing. This article may be downloaded for personal use only. Any other use requires prior permission of the author and AIP Publishing. This article appeared in Ali Shafiei Souderjani, Mostafa Bakouei, Mohammad Hassan Saidi, and Mojtaba Taghipoor , "Electrophoretic motion of hydrophobic spherical particles in nanopore: Characteristics, separation, and resistive pulse sensing", Physics of Fluids 35, 022005 (2023) https://doi.org/10.1063/5.0136454 and may be found at https://aip.scitation.org/doi/abs/10.1063/5.0136454.
https://rightsstatements.org/vocab/InC/1.0/
doi:https://doi.org/10.1063/5.0136454
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Abstract

Electrophoretic motion of hydrophobic particles has been scrutinized numerically in solid-state nanopores. The Poisson, Stokes, and Nernst–Planck equations are solved simultaneously, and the Newton–Raphson algorithm is used to compute the correct velocity at each point. For the hydrophobic surface characterization, the Navier-slip boundary condition with a wide range of slip lengths is applied to the nanoparticle’s surface. The effects of the electric field intensity, the electrolyte concentration, and the particle’s size on the electrophoretic velocity are examined. Then, the nanopore’s size and surface charge density are manipulated to achieve the configuration for separating hydrophobic and hydrophilic particles based on their slip lengths. The results show that the hydrophobic and hydrophilic particles, under particular circumstances, would move in the opposite direction in a nanopore. Finally, the resistive pulses of the particles with various slip lengths are studied. The resistive pulse properties of the hydrophobic and the hydrophilic particles are completely distinguishable and show potential application for resistive pulse sensing as a tool for reckoning the particle’s slip length.

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