English

Ionic transport through sub-10 nm diameter hydrophobic high-aspect ratio nanopores: experiment, theory and simulation

Mesoscale and Nanoscale Physics 2019-08-17 v1 Soft Condensed Matter Chemical Physics

Abstract

Fundamental understanding of ionic transport at the nanoscale is essential for developing biosensors based on nanopore technology and new generation high-performance nanofiltration membranes for separation and purification applications. We study here ionic transport through single putatively neutral hydrophobic nanopores with high aspect ratio (of length L=6 \mu m with diameters ranging from 1 to 10 nm) and with a well controlled cylindrical geometry. We develop a detailed hybrid mesoscopic theoretical approach for the electrolyte conductivity inside nanopores, which considers explicitly ion advection by electro-osmotic flow and possible flow slip at the pore surface. By fitting the experimental conductance data we show that for nanopore diameters greater than 4 nm a constant weak surface charge density of about 102^{-2} C m2^{-2} needs to be incorporated in the model to account for conductance plateaus of a few pico-Siemens at low salt concentrations. For tighter nanopores, our analysis leads to a higher surface charge density, which can be attributed to a modification of ion solvation structure close to the pore surface, as observed in the molecular dynamics simulations we performed.

Keywords

Cite

@article{arxiv.1506.03568,
  title  = {Ionic transport through sub-10 nm diameter hydrophobic high-aspect ratio nanopores: experiment, theory and simulation},
  author = {Sébastien Balme and Fabien Picaud and Manoel Manghi and John Palmeri and Mikhael Bechelany and Simon Cabello-Aguilar and Adib Abou-Chaaya and Philippe Miele and Emmanuel Balanzat and Jean Marc Janot},
  journal= {arXiv preprint arXiv:1506.03568},
  year   = {2019}
}

Comments

14 pages, Supplementary information available on request