Dangling bonds at the edge of a nanopore in monolayer graphene make it susceptible to back-filling at low temperatures from atmospheric hydrocarbons, leading to potential instability for nanopore applications, such as DNA sequencing. We show that closed edge nanopores in bilayer graphene are robust to back-filling under atmospheric conditions for days. A controlled method for closed edge nanopore formation starting from monolayer graphene is reported using an in situ heating holder and electron beam irradiation within an aberration-corrected transmission electron microscopy. Tailoring of closed-edge nanopore sizes is demonstrated from 1.4–7.4 nm. These results should provide mechanisms for improving the stability of nanopores in graphene fo...
Using molecular dynamics simulation with empirical potentials, we show that energetic cluster ion be...
Patterns formed in monolayer graphene (Gr) and hexagonal boron nitride (h-BN) upon ion irradiation i...
Graphene nanopore has been promising the ultra-high resolution for DNA sequencing due to the atomic ...
Dangling bonds at the edge of a nanopore in monolayer graphene make it susceptible to back-filling a...
Graphene is a unique material with a thickness as low as a single atom, high in-plane conductivity a...
Graphene is an ideal thin membrane substrate for creating molecule-scale devices. Here we demonstrat...
The use of atomically thin graphene for molecular sensing has attracted tremendous attention over th...
Graphene is a two-dimensional, atomic thin, usually impermeable nanomaterial with astonishing electr...
We study the electrochemistry of single layer graphene edges using a nanopore-based structure consis...
Abstract—Sub-5 nm nanopores are widely used in single-molecule detections for biological and chemica...
Using molecular dynamics simulation with empirical potentials, we show that energetic cluster ion be...
It has recently been recognized that solid-state nanopores in single-atomic-layer graphene membranes...
My primary goal was to perform an in depth characterisation of the atomic structure of graphene edge...
Studies of DNA translocation through graphene nanopores have revealed their potential for DNA sequen...
Graphene-based nanopore devices are promising candidates for next-generation DNA sequencing. Here we...
Using molecular dynamics simulation with empirical potentials, we show that energetic cluster ion be...
Patterns formed in monolayer graphene (Gr) and hexagonal boron nitride (h-BN) upon ion irradiation i...
Graphene nanopore has been promising the ultra-high resolution for DNA sequencing due to the atomic ...
Dangling bonds at the edge of a nanopore in monolayer graphene make it susceptible to back-filling a...
Graphene is a unique material with a thickness as low as a single atom, high in-plane conductivity a...
Graphene is an ideal thin membrane substrate for creating molecule-scale devices. Here we demonstrat...
The use of atomically thin graphene for molecular sensing has attracted tremendous attention over th...
Graphene is a two-dimensional, atomic thin, usually impermeable nanomaterial with astonishing electr...
We study the electrochemistry of single layer graphene edges using a nanopore-based structure consis...
Abstract—Sub-5 nm nanopores are widely used in single-molecule detections for biological and chemica...
Using molecular dynamics simulation with empirical potentials, we show that energetic cluster ion be...
It has recently been recognized that solid-state nanopores in single-atomic-layer graphene membranes...
My primary goal was to perform an in depth characterisation of the atomic structure of graphene edge...
Studies of DNA translocation through graphene nanopores have revealed their potential for DNA sequen...
Graphene-based nanopore devices are promising candidates for next-generation DNA sequencing. Here we...
Using molecular dynamics simulation with empirical potentials, we show that energetic cluster ion be...
Patterns formed in monolayer graphene (Gr) and hexagonal boron nitride (h-BN) upon ion irradiation i...
Graphene nanopore has been promising the ultra-high resolution for DNA sequencing due to the atomic ...