Ion exclusion by sub-2-nm carbon nanotube pores
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- 11 November 2008
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 105 (45) , 17250-17255
- https://doi.org/10.1073/pnas.0710437105
Abstract
Biological pores regulate the cellular traffic of a large variety of solutes, often with high selectivity and fast flow rates. These pores share several common structural features: the inner surface of the pore is frequently lined with hydrophobic residues, and the selectivity filter regions often contain charged functional groups. Hydrophobic, narrow-diameter carbon nanotubes can provide a simplified model of membrane channels by reproducing these critical features in a simpler and more robust platform. Previous studies demonstrated that carbon nanotube pores can support a water flux comparable to natural aquaporin channels. Here, we investigate ion transport through these pores using a sub-2-nm, aligned carbon nanotube membrane nanofluidic platform. To mimic the charged groups at the selectivity region, we introduce negatively charged groups at the opening of the carbon nanotubes by plasma treatment. Pressure-driven filtration experiments, coupled with capillary electrophoresis analysis of the permeate and feed, are used to quantify ion exclusion in these membranes as a function of solution ionic strength, pH, and ion valence. We show that carbon nanotube membranes exhibit significant ion exclusion that can be as high as 98% under certain conditions. Our results strongly support a Donnan-type rejection mechanism, dominated by electrostatic interactions between fixed membrane charges and mobile ions, whereas steric and hydrodynamic effects appear to be less important.Keywords
This publication has 52 references indexed in Scilit:
- Tailoring Wettability Change on Aligned and Patterned Carbon Nanotube Films for Selective AssemblyThe Journal of Physical Chemistry B, 2007
- Hindrance Factors for Diffusion and Convection in PoresIndustrial & Engineering Chemistry Research, 2006
- Salt Permeation and Exclusion in Hydroxylated and Functionalized Silica PoresPhysical Review Letters, 2006
- Ion separation using a Y-junction carbon nanotubeNanotechnology, 2006
- The influence of geometry, surface character, and flexibility on the permeation of ions and water through biological poresPhysical Biology, 2004
- Crystal Structure of Escherichia coli MscS, a Voltage-Modulated and Mechanosensitive ChannelScience, 2002
- The open pore conformation of potassium channelsNature, 2002
- Crystal structure and mechanism of a calcium-gated potassium channelNature, 2002
- Water conduction through the hydrophobic channel of a carbon nanotubeNature, 2001
- The Structure of the Potassium Channel: Molecular Basis of K + Conduction and SelectivityScience, 1998