We show that the ionic environment plays a critical role in determining the configurational properties of DNA confined in silica nanochannels. The extension of DNA in the nanochannels increases as the ionic strength is reduced, almost tripling over two decades in ionic strength for channels around 100x100 nm in dimension. Surprisingly, we find that the variation of the persistence length alone with ionic strength is not enough to explain our results. The effect is due mainly to increasing self-avoidance created by the reduced screening of electrostatic interactions at low ionic strength. To quantify the increase in self-avoidance, we introduce a new parameter into the de Gennes theory: an effective DNA width that gives the increase in the e...
The successful design of nanofluidic devices for the manipulation of biopolymers requires an underst...
AbstractWe demonstrate that voltage-biased solid-state nanopores can transiently localize DNA in an ...
The facile self-assembly and nanomanipulation of nucleic acids hold great promise in the design of i...
The ionic effects on the dynamics and conformation of DNA in silt-like confinement are investigated....
We present nanoslit confined DNA conformations at very low ionic strengths and a theory to explain m...
Single nanopores attract a great deal of scientific interest as a basis for biosensors and as a syst...
There is currently a growing interest in control of stretching of DNA inside nanoconfined regions du...
We investigate experimentally the effects of electrostatic interactions and topological constraints ...
The extension of DNA confined to nanochannels has been studied intensively and in detail. However, q...
The extension of DNA confined to nanochannels has been studied intensively and in detail. Yet quanti...
A scaling analysis is presented of the statistics of long DNA confined in nanochannels and nanoslits...
The successful design of nanofluidic devices for the manipulation of biopolymers requires an underst...
The successful design of nanofluidic devices for the manipulation of biopolymers requires an underst...
The successful design of nanofluidic devices for the manipulation of biopolymers requires an underst...
The successful design of nanofluidic devices for the manipulation of biopolymers requires an underst...
The successful design of nanofluidic devices for the manipulation of biopolymers requires an underst...
AbstractWe demonstrate that voltage-biased solid-state nanopores can transiently localize DNA in an ...
The facile self-assembly and nanomanipulation of nucleic acids hold great promise in the design of i...
The ionic effects on the dynamics and conformation of DNA in silt-like confinement are investigated....
We present nanoslit confined DNA conformations at very low ionic strengths and a theory to explain m...
Single nanopores attract a great deal of scientific interest as a basis for biosensors and as a syst...
There is currently a growing interest in control of stretching of DNA inside nanoconfined regions du...
We investigate experimentally the effects of electrostatic interactions and topological constraints ...
The extension of DNA confined to nanochannels has been studied intensively and in detail. However, q...
The extension of DNA confined to nanochannels has been studied intensively and in detail. Yet quanti...
A scaling analysis is presented of the statistics of long DNA confined in nanochannels and nanoslits...
The successful design of nanofluidic devices for the manipulation of biopolymers requires an underst...
The successful design of nanofluidic devices for the manipulation of biopolymers requires an underst...
The successful design of nanofluidic devices for the manipulation of biopolymers requires an underst...
The successful design of nanofluidic devices for the manipulation of biopolymers requires an underst...
The successful design of nanofluidic devices for the manipulation of biopolymers requires an underst...
AbstractWe demonstrate that voltage-biased solid-state nanopores can transiently localize DNA in an ...
The facile self-assembly and nanomanipulation of nucleic acids hold great promise in the design of i...