Solid-state nanopore sequencing is now confronted with problems of stochastic pore clogging and too fast speed during the DNA permeation through a nanopore, although this technique is revolutionary with long readability and high efficiency. These two problems are related to controlling molecular transportation during sequencing. To control the DNA motion and identify the four bases, we propose nanoslit sensing based on the planar heterostructure of two-dimensional graphene and hexagonal boron nitride. Molecular dynamics simulations are performed on investigating the motion of DNA molecules on the heterostructure with a nanoslit sensor. Results show that the DNA molecules are confined within the hexagonal boron nitride (HBN) domain of the he...
Graphene nanopore has been promising the ultra-high resolution for DNA sequencing due to the atomic ...
DNA sequencing techniques are critical in order to investigate genes’ functions. Obtaining fa...
In spite of significant advances in the detection, separation and counting of single biological mole...
Solid-state nanopore sequencing is now confronted with problems of stochastic pore clogging and too ...
2D nanoslit devices, where two crystals with atomically flat surfaces are separated by only a few na...
Nanopore-based single-molecule detection and analysis have been pursued intensively over the past de...
Two-dimensional (2D) materials have transformed single molecule nanoscale manipulation and molecular...
We study two-terminal devices for DNA sequencing that consist of a metallic graphene nanoribbon with...
Fast, cost effective, single-shot DNA sequencing could be the prelude of a new era in genetics. As D...
Topological line defects in graphene represent an ideal way to produce highly controlled structures ...
Graphene nanopore based sensor devices have shown great potential for the detection of DNA. To under...
Using all-atom molecular dynamics and atomic-resolution Brownian dynamics, we simulate the transloca...
The effective transport of a single-stranded DNA (ssDNA) molecule through a solid-state nanopore is ...
To demonstrate the potential of nanopores in bilayer graphene for DNA sequencing, we computed the cu...
We investigate by means of molecular dynamics simulations stretch-induced stepwise translocation of ...
Graphene nanopore has been promising the ultra-high resolution for DNA sequencing due to the atomic ...
DNA sequencing techniques are critical in order to investigate genes’ functions. Obtaining fa...
In spite of significant advances in the detection, separation and counting of single biological mole...
Solid-state nanopore sequencing is now confronted with problems of stochastic pore clogging and too ...
2D nanoslit devices, where two crystals with atomically flat surfaces are separated by only a few na...
Nanopore-based single-molecule detection and analysis have been pursued intensively over the past de...
Two-dimensional (2D) materials have transformed single molecule nanoscale manipulation and molecular...
We study two-terminal devices for DNA sequencing that consist of a metallic graphene nanoribbon with...
Fast, cost effective, single-shot DNA sequencing could be the prelude of a new era in genetics. As D...
Topological line defects in graphene represent an ideal way to produce highly controlled structures ...
Graphene nanopore based sensor devices have shown great potential for the detection of DNA. To under...
Using all-atom molecular dynamics and atomic-resolution Brownian dynamics, we simulate the transloca...
The effective transport of a single-stranded DNA (ssDNA) molecule through a solid-state nanopore is ...
To demonstrate the potential of nanopores in bilayer graphene for DNA sequencing, we computed the cu...
We investigate by means of molecular dynamics simulations stretch-induced stepwise translocation of ...
Graphene nanopore has been promising the ultra-high resolution for DNA sequencing due to the atomic ...
DNA sequencing techniques are critical in order to investigate genes’ functions. Obtaining fa...
In spite of significant advances in the detection, separation and counting of single biological mole...