Physical Review Letters · 2011 · 89 citations · 31 references
Dna NanotechnologyEngineeringCapture RateMedicineMembrane TransportDna AnalysisOligonucleotideMolecular BiologyNanofluidicsSalt GradientsSalt GradientOsmotic FlowNanopore TechnologyDna Capture RateBiophysicsNanoporesDna Molecules
Recent experiments of translocation of double-stranded DNA through nanopores [M. Wanunu et al., Nature Nanotech. 5, 160 (2009)] reveal that the DNA capture rate can be significantly influenced by a salt gradient across the pore. We show that osmotic flow combined with electrophoretic effects can quantitatively explain the experimental data on the salt-gradient dependence of the capture rate.
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Ion-beam sculpting at nanometre length scales
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Slowing DNA Translocation in a Solid-State Nanopore
Daniel Fologea, James Uplinger, Brian Thomas et al. · Nano Letters · 2005 · 553 citations · Full text