Understanding biophysics governing DNA capture into a nanopore and establishing a manipulation system for the capture process are essential for nanopore-based genome sequencing. In this work, the functionality of extended electric field and electroosmotic flow (EOF) during the capture stage and their dependence on gate voltage, U(G), are investigated. We demonstrate that while both the electric field and EOF within ads chamber make long-distance contributions to DNA capture around the pore mouth, the former effect is always capturing, while the latter causes trapping or blocking of the molecule depending on the magnitude of the gate voltage, U(G): an anionic EOF induced by high U(G) is capable of doubling the DNA trapping speed and thus the...
The accurate sequencing of DNA using nanopores requires control over the speed of DNA translocation ...
The accurate sequencing of DNA using nanopores requires control over the speed of DNA translocation ...
The accurate sequencing of DNA using nanopores requires control over the speed of DNA translocation ...
One major challenge of nanopore-based DNA sequencing technology is to find an efficient way to reduc...
One major challenge of nanopore-based DNA sequencing technology is to find an efficient way to reduc...
Experiments using nanopores demonstrated that a salt gradient enhances the capture rate of DNA and r...
AbstractExperiments using nanopores demonstrated that a salt gradient enhances the capture rate of D...
AbstractWe have previously demonstrated that a nanometer-diameter pore in a nanometer-thick metal-ox...
We report the use of an array of electrically gated ∼200 nm solid-state pores as nanofluidic transis...
AbstractExperiments using nanopores demonstrated that a salt gradient enhances the capture rate of D...
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...
Nanopores are apertures of nanometric dimensions in an insulating matrix. They are routinely used to...
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...
The accurate sequencing of DNA using nanopores requires control over the speed of DNA translocation ...
The accurate sequencing of DNA using nanopores requires control over the speed of DNA translocation ...
The accurate sequencing of DNA using nanopores requires control over the speed of DNA translocation ...
One major challenge of nanopore-based DNA sequencing technology is to find an efficient way to reduc...
One major challenge of nanopore-based DNA sequencing technology is to find an efficient way to reduc...
Experiments using nanopores demonstrated that a salt gradient enhances the capture rate of DNA and r...
AbstractExperiments using nanopores demonstrated that a salt gradient enhances the capture rate of D...
AbstractWe have previously demonstrated that a nanometer-diameter pore in a nanometer-thick metal-ox...
We report the use of an array of electrically gated ∼200 nm solid-state pores as nanofluidic transis...
AbstractExperiments using nanopores demonstrated that a salt gradient enhances the capture rate of D...
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...
Nanopores are apertures of nanometric dimensions in an insulating matrix. They are routinely used to...
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...
The accurate sequencing of DNA using nanopores requires control over the speed of DNA translocation ...
The accurate sequencing of DNA using nanopores requires control over the speed of DNA translocation ...
The accurate sequencing of DNA using nanopores requires control over the speed of DNA translocation ...