We report the use of an array of electrically gated ∼200 nm solid-state pores as nanofluidic transistors to manipulate the capture and passage of DNA. The devices are capable of reversibly altering the rate of DNA capture by over 3 orders of magnitude using sub-1 V biasing of a gate electrode. This efficient gating originates from the counter-balance of electrophoresis and electroosmosis, as revealed by quantitative numerical simulations. Such a reversible electronically tunable biomolecular switch may be used to manipulate nucleic acid delivery in a fluidic circuit, and its development is an important first step toward active control of DNA motion through solid-state nanopores for sensing applications
AbstractSequencing DNA in a synthetic solid-state nanopore is potentially a low-cost and high-throug...
Integrating biological components into artificial devices establishes an interface to understand and...
Control of transport across membranes, whether natural or synthetic, is fundamental in many biotechn...
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...
Understanding biophysics governing DNA capture into a nanopore and establishing a manipulation syste...
In pursuit of developing solid-state nanopore-based DNA sequencing technology, we have designed and ...
AbstractSequencing DNA in a synthetic solid-state nanopore is potentially a low-cost and high-throug...
We present a simple method for DNA translocation driven by applying AC voltages, such as square and ...
AbstractWe have previously demonstrated that a nanometer-diameter pore in a nanometer-thick metal-ox...
Solid-state nanopores have emerged as possible candidates for next-generation DNA sequencing devices...
Switchable ion channels that are made of membrane proteins play different roles in cellular circuits...
Nanopores offer sensors for a broad range of nanoscale materials, in particular ones of biological o...
Solid-state nanopores have emerged as possible candidates for next-generation DNA sequencing devices...
Charged single molecules of DNA can be detected and characterized with a voltage-biased solid-state ...
AbstractSequencing DNA in a synthetic solid-state nanopore is potentially a low-cost and high-throug...
Integrating biological components into artificial devices establishes an interface to understand and...
Control of transport across membranes, whether natural or synthetic, is fundamental in many biotechn...
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...
Understanding biophysics governing DNA capture into a nanopore and establishing a manipulation syste...
In pursuit of developing solid-state nanopore-based DNA sequencing technology, we have designed and ...
AbstractSequencing DNA in a synthetic solid-state nanopore is potentially a low-cost and high-throug...
We present a simple method for DNA translocation driven by applying AC voltages, such as square and ...
AbstractWe have previously demonstrated that a nanometer-diameter pore in a nanometer-thick metal-ox...
Solid-state nanopores have emerged as possible candidates for next-generation DNA sequencing devices...
Switchable ion channels that are made of membrane proteins play different roles in cellular circuits...
Nanopores offer sensors for a broad range of nanoscale materials, in particular ones of biological o...
Solid-state nanopores have emerged as possible candidates for next-generation DNA sequencing devices...
Charged single molecules of DNA can be detected and characterized with a voltage-biased solid-state ...
AbstractSequencing DNA in a synthetic solid-state nanopore is potentially a low-cost and high-throug...
Integrating biological components into artificial devices establishes an interface to understand and...
Control of transport across membranes, whether natural or synthetic, is fundamental in many biotechn...