Tuning transport selectivity of ionic species by phosphoric acid gradient in positively charged nanochannel membranes

Anal Chem. 2015 Feb 3;87(3):1544-51. doi: 10.1021/ac503813r. Epub 2015 Jan 15.

Abstract

The transport of ionic species through a nanochannel plays important roles in fundamental research and practical applications of the nanofluidic device. Here, we demonstrated that ionic transport selectivity of a positively charged nanochannel membrane can be tuned under a phosphoric acid gradient. When phosphoric acid solution and analyte solution were connected by the positively charged nanochannel membrane, the faster-moving analyte through the positively charged nanochannel membrane was the positively charged dye (methylviologen, MV(2+)) instead of the negatively charged dye (1,5-naphthalene disulfonate, NDS(2-)). In other words, a reversed ion selectivity of the nanochannel membranes can be found. It can be explained as a result of the combination of diffusion, induced electroosmosis, and induced electrophoresis. In addition, the influencing factors of transport selectivity, including concentration of phosphoric acid, penetration time, and volume of feed solution, were also investigated. The results showed that the transport selectivity can further be tuned by adjusting these factors. As a method of tuning ionic transport selectivity by establishing phosphoric acid gradient, it will be conducive to improving the separation of ionic species.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Coloring Agents / chemistry
  • Diffusion
  • Electroosmosis / instrumentation
  • Electrophoresis / instrumentation
  • Equipment Design
  • Ion Transport
  • Ions / chemistry*
  • Nanostructures / chemistry*
  • Phosphoric Acids / chemistry*

Substances

  • Coloring Agents
  • Ions
  • Phosphoric Acids
  • phosphoric acid