We present a novel cost-efficient method for the fabrication of high-quality self-aligned plasmonic nanopores by means of an optically controlled dielectric breakdown. Excitation of a plasmonic bowtie nanoantenna on a dielectric membrane localizes the high-voltage-driven breakdown of the membrane to the hotspot of the enhanced optical field, creating a nanopore that is automatically self-aligned to the plasmonic hotspot of the bowtie. We show that the approach provides precise control over the nanopore size and that these plasmonic nanopores can be used as single molecule DNA sensors with a performance matching that of TEM-drilled nanopores. The principle of optically controlled breakdown can also be used to fabricate nonplasmonic nanopores...
Solid-state nanopores are single-molecule sensors that hold great potential for rapid protein and nu...
Controlled breakdown has recently emerged as a highly accessible technique to fabricate solid-state ...
ABSTRACT: Nanopores enable label-free detection and analysis of single biomolecules. Here, we invest...
We present a novel cost-efficient method for the fabrication of high-quality self-aligned plasmonic ...
<div><p>Nanofabrication techniques for achieving dimensional control at the nanometer scale are gene...
Solid-state nanopore-based sensors are promising platforms for next-generation sequencing technologi...
Nanopore sensors provide a unique platform to detect individual nucleic acids, proteins, and other b...
Grabbing a single molecule and inspecting its contents is far from easy. Apart from the small size o...
Plasmon resonance biosensors provide ultimate sensitivity at the single-molecule level. This sensiti...
Solid-state nanopores are single-molecule sensors that hold great potential for rapid protein and nu...
Plasmonic solid-state nanopores with tunable hole diameters can be prepared via a photocatalytic eff...
Nanopore sensing relies on the application of a voltage across a nano-scale aperture fabricated in a...
Plasmon resonance biosensors provide ultimate sensitivity at the single-molecule level. This sensiti...
A review of sensing applications based on plasmonic nanopores is given. Many new types of plasmonic ...
With the aim of developing a DNA sequencing methodology, we theoretically examine the feasibility of...
Solid-state nanopores are single-molecule sensors that hold great potential for rapid protein and nu...
Controlled breakdown has recently emerged as a highly accessible technique to fabricate solid-state ...
ABSTRACT: Nanopores enable label-free detection and analysis of single biomolecules. Here, we invest...
We present a novel cost-efficient method for the fabrication of high-quality self-aligned plasmonic ...
<div><p>Nanofabrication techniques for achieving dimensional control at the nanometer scale are gene...
Solid-state nanopore-based sensors are promising platforms for next-generation sequencing technologi...
Nanopore sensors provide a unique platform to detect individual nucleic acids, proteins, and other b...
Grabbing a single molecule and inspecting its contents is far from easy. Apart from the small size o...
Plasmon resonance biosensors provide ultimate sensitivity at the single-molecule level. This sensiti...
Solid-state nanopores are single-molecule sensors that hold great potential for rapid protein and nu...
Plasmonic solid-state nanopores with tunable hole diameters can be prepared via a photocatalytic eff...
Nanopore sensing relies on the application of a voltage across a nano-scale aperture fabricated in a...
Plasmon resonance biosensors provide ultimate sensitivity at the single-molecule level. This sensiti...
A review of sensing applications based on plasmonic nanopores is given. Many new types of plasmonic ...
With the aim of developing a DNA sequencing methodology, we theoretically examine the feasibility of...
Solid-state nanopores are single-molecule sensors that hold great potential for rapid protein and nu...
Controlled breakdown has recently emerged as a highly accessible technique to fabricate solid-state ...
ABSTRACT: Nanopores enable label-free detection and analysis of single biomolecules. Here, we invest...