Literature DB >> 24803967

Ion diffusion coefficient measurements in nanochannels at various concentrations.

Junrong Wang1, Li Zhang2, Jianming Xue3, Guoqing Hu1.   

Abstract

Diffusion is one of the most fundamental properties of ionic transport in solutions. Here, we present experimental studies and theoretical analysis on the ion diffusion in nanochannels. Based on Fick's second law, we develop a current monitoring method to measure ion diffusion coefficient of high solution concentrations in nanochannels. This method is further extended to the cases at medium and low concentrations. Through monitoring ionic current during diffusion, we obtain diffusion coefficients of potassium chloride solution at different concentrations in nanochannels. These diffusion coefficients within the confined space are close to theirs bulk values. It is also found that the apparent ion diffusion equilibrium in the present experiments is very slow at low concentration, which we attribute to the slow equilibrium of the nanochannel surface charge. Finally, we get a primary acknowledge of the equilibrium rate between the nanochannel surface charge and electrolyte solution. The results in this work have improved the understanding of nanoscale diffusion and nanochannel surface charge and may be useful in nanofluidic applications such as ion-selective transport, energy conversion, and nanopore biosensors.

Entities:  

Year:  2014        PMID: 24803967      PMCID: PMC4008760          DOI: 10.1063/1.4874215

Source DB:  PubMed          Journal:  Biomicrofluidics        ISSN: 1932-1058            Impact factor:   2.800


  27 in total

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Authors:  Alessandro Grattoni; Daniel Fine; Erika Zabre; Arturas Ziemys; Jaskaran Gill; Yuri Mackeyev; Matthew A Cheney; Delia C Danila; Sharath Hosali; Lon J Wilson; Fazle Hussain; Mauro Ferrari
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9.  On the propagation of concentration polarization from microchannel-nanochannel interfaces. Part II: Numerical and experimental study.

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10.  Ions and counterions in a biological channel: a molecular dynamics simulation of OmpF porin from Escherichia coli in an explicit membrane with 1 M KCl aqueous salt solution.

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