A detailed understanding of the origin of the electrophoretic force on DNA molecules in a solid-state nanopore is important for the development of nanopore-based sequencing technologies. Because of the discrepancies between recent attempts to predict this force and both direct and indirect experimental measurements, this topic has been the focus of much recent discussion. We show that the force is predictable to very good accuracy if all of the experimental conditions are accounted for properly. To resolve this issue, we compare the calculation efficiency and accuracy of numerical solutions of Poisson-Boltzmann and Poisson-Nernst-Planck descriptions of electrolyte behavior in the nanopore in the presence of DNA molecules. Two geometries--ax...
AbstractWe demonstrate that voltage-biased solid-state nanopores can transiently localize DNA in an ...
ABSTRACT: We use optical tweezers to investigate the threading force on a single dsDNA molecule insi...
We report the formation of a tunable single DNA molecule trap near a solid-state nanopore in an elec...
A mong the variety of roles for nanopores in biology, an important one is enabling polymer transport...
We report experiments and modeling of translocation of double-strand DNA through a siliconoxide nano...
Galla L, Meyer A, Spiering A, et al. Hydrodynamic Slip on DNA Observed by Optical Tweezers-Controlle...
Surface charge density of nanopore walls plays a critical role in DNA capture in nanopore-based sens...
Surface charge density of nanopore walls plays a critical role in DNA capture in nanopore-based sens...
Surface charge density of nanopore walls plays a critical role in DNA capture in nanopore-based sens...
Surface charge density of nanopore walls plays a critical role in DNA capture in nanopore-based sens...
Sischka A, Galla L, Meyer A, et al. Controlled translocation of DNA through nanopores in carbon nano...
The current blockage during DNA molecule translocation through a solid-state nanopore is very import...
AbstractSequencing DNA in a synthetic solid-state nanopore is potentially a low-cost and high-throug...
AbstractWe have explored the electromechanical properties of DNA on a nanometer-length scale using a...
We report direct, concurrent measurements of the forces and currents associated with the translocati...
AbstractWe demonstrate that voltage-biased solid-state nanopores can transiently localize DNA in an ...
ABSTRACT: We use optical tweezers to investigate the threading force on a single dsDNA molecule insi...
We report the formation of a tunable single DNA molecule trap near a solid-state nanopore in an elec...
A mong the variety of roles for nanopores in biology, an important one is enabling polymer transport...
We report experiments and modeling of translocation of double-strand DNA through a siliconoxide nano...
Galla L, Meyer A, Spiering A, et al. Hydrodynamic Slip on DNA Observed by Optical Tweezers-Controlle...
Surface charge density of nanopore walls plays a critical role in DNA capture in nanopore-based sens...
Surface charge density of nanopore walls plays a critical role in DNA capture in nanopore-based sens...
Surface charge density of nanopore walls plays a critical role in DNA capture in nanopore-based sens...
Surface charge density of nanopore walls plays a critical role in DNA capture in nanopore-based sens...
Sischka A, Galla L, Meyer A, et al. Controlled translocation of DNA through nanopores in carbon nano...
The current blockage during DNA molecule translocation through a solid-state nanopore is very import...
AbstractSequencing DNA in a synthetic solid-state nanopore is potentially a low-cost and high-throug...
AbstractWe have explored the electromechanical properties of DNA on a nanometer-length scale using a...
We report direct, concurrent measurements of the forces and currents associated with the translocati...
AbstractWe demonstrate that voltage-biased solid-state nanopores can transiently localize DNA in an ...
ABSTRACT: We use optical tweezers to investigate the threading force on a single dsDNA molecule insi...
We report the formation of a tunable single DNA molecule trap near a solid-state nanopore in an elec...