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Modeling the conductance and DNA blockade of solid-state nanopores

Nanotechnology · 2011 · Vol. 22(31) · pp. 315101–315101
Stefan W. KowalczykAlexander Y. GrosbergYitzhak RabinCees Dekker

Abstract

We present measurements and theoretical modeling of the ionic conductance G of solid-state nanopores with 5-100 nm diameters, with and without DNA inserted into the pore. First, we show that it is essential to include access resistance to describe the conductance, in particular for larger pore diameters. We then present an exact solution for G of an hourglass-shaped pore, which agrees very well with our measurements without any adjustable parameters, and which is an improvement over the cylindrical approximation. Subsequently we discuss the conductance blockade ΔG due to the insertion of a DNA molecule into the pore, which we study experimentally as a function of pore diameter. We find that ΔG decreases with pore diameter, contrary to the predictions of earlier models that forecasted a constant ΔG. We compare three models for ΔG, all of which provide good agreement with our experimental data.

Nanopore and Nanochannel Transport StudiesThermal properties of materialsFuel Cells and Related MaterialsConductanceNanoporeMaterials scienceConstant (computer programming)MoleculeIonic bondingSolid-stateNanotechnologyChemical physicsCondensed matter physics

MeSH terms

DNAElectric ConductivityIonsModels, ChemicalNanopores
Citations
483
FWCI
16.76
field-weighted impact
References
22
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References
Solid-state nanopores
Nature Nanotechnology · 2007 · 1,895 citations
The potential and challenges of nanopore sequencing
Nature Biotechnology · 2008 · 2,507 citations
Access resistance of a small circular pore.
The Journal of General Physiology · 1975 · 443 citations
Pharmacological Modifications of the Sodium Channels of Frog Nerve
The Journal of General Physiology · 1968 · 487 citations
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