Electrokinetic translocation of a deformable nanoparticle controlled by field effect in nanopores

Electrophoresis. 2021 Nov;42(21-22):2197-2205. doi: 10.1002/elps.202100107. Epub 2021 Sep 4.

Abstract

Nanopores have become a popular single-molecule manipulation and detection technology. In this paper, we have constructed a continuum model of the nanopore; the arbitrary Lagrangian-Eulerian (ALE) method is used to describe the motion of particles and fluid. The mathematical model couples the stress-strain equation for the dynamics of a deformable particle, the Poisson equation for the electric field, the Navier-Stokes equations for the flow field, and the Nernst-Planck equations for ionic transport. Based on the model, the mechanism of field-effect regulation of particles passing through a nanopore is investigated. The results show that the transport of particles which is controlled by the field effect depends on the electroosmotic flow (EOF) generated by the gate electrode in the nanopore and the electrostatic interaction between the nanopore and particles. That also explains the asymmetry of particle transport velocity in the nanopore with a gate electrode. When the gate potential is negative, or the gate electrode length is small, the maximum deformation of the particles is increased. The field-effect regulation in the nanopore provides an active and compatible method for nanopore detection, and provides a convenient method for the active control of the particle deformation in the nanopore.

Keywords: Electroosmotic flow; Electrophoresis; Gate electrode; Nanoparticle; Nanopore.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Electroosmosis
  • Models, Theoretical
  • Nanoparticles*
  • Nanopores*
  • Static Electricity