Effects of surface charge density and distribution on the nanochannel electro-osmotic flow
Bohumir Jelinek, Sergio D. Felicelli, Paul F. Mlakar, John F. Peters
Abstract
Bohumir Jelinek, Sergio D. Felicelli, Paul F. Mlakar, John F. Peters
Abstract
Surface charge density and distribution dependence of a nanochannel electro-osmotic flow was examined using a Molecular Dynamics (MD) model. Systems consisting of Na+ and Cl? ions in water confined between crystalline walls with varying negative charge on inner surfaces in an external electric field were investigated. At low surface charge densities, water flows as expected by common interpretations of electro-osmosis. At intermediate surface charge density, the flow exhibits a maximum. Strongly charged surfaces cause adsorption of counterions, immobilisation of the near-wall fluid layers, and subsequent flow reversal. An effect of increase in the viscosity of water near the strongly charged surface was demonstrated. When the discrete ?1 e charge was distributed on a subgrid of surface atoms, the flow deteriorated and reversed at much lower surface charge densities than when all the surface atoms carried equal partial charge.
OpenAlex reports 6 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
Surface charge density and distribution dependence of a nanochannel electro-osmotic flow was examined using a Molecular Dynamics (MD) model. Systems consisting of Na+ and Cl? ions in water confined between crystalline walls with varying negative charge on inner surfaces in an external electric field were investigated. At low surface charge densities, water flows as expected by common interpretations of electro-osmosis. At intermediate surface charge density, the flow exhibits a maximum. Strongly charged surfaces cause adsorption of counterions, immobilisation of the near-wall fluid layers, and subsequent flow reversal. An effect of increase in the viscosity of water near the strongly charged surface was demonstrated. When the discrete ?1 e charge was distributed on a subgrid of surface atoms, the flow deteriorated and reversed at much lower surface charge densities than when all the surface atoms carried equal partial charge.
Key concepts: Charge density, Surface charge, Flow (mathematics), Materials science, Surface (topology), Nanotechnology, Mechanics, Chemical physics