Artificial DNA nanostructures show promise for the organization of functional materials to create nanoelectronic or nano-optical devices. DNA origami, in which a long single strand of DNA is folded into a shape using shorter 'staple strands', can display 6-nm-resolution patterns of binding sites, in principle allowing complex arrangements of carbon nanotubes, silicon nanowires, or quantum dots. However, DNA origami are synthesized in solution and uncontrolled deposition results in random arrangements; this makes it difficult to measure the properties of attached nanodevices or to integrate them with conventionally fabricated microcircuitry. Here we describe the use of electron-beam lithography and dry oxidative etching to create DNA origami...
The nanoscale organization of functional (bio)molecules on solid substrates with nanoscale spatial r...
The generation of arbitrary patterns and shapes at very small scales is at the heart of our effort t...
Nanotechnology often exploits DNA origami nanostructures assembled into even larger superstructures ...
Artificial DNA nanostructures show promise for the organization of functional materials to create na...
Artificial DNA nanostructures, such as DNA origami, have great potential as templates for the bottom...
DNA origami is a modular platform for the combination of molecular and colloidal components to creat...
DNA origami has become an established technique for designing well-defined nanostructures with any d...
DNA origami is a modular platform for the combination of molecular and colloidal components to creat...
The controlled positioning of DNA nanostructures on technologically relevant surfaces represents a m...
An orthogonal, noncovalent approach to direct the assembly of higher-order DNA origami nanostructure...
A central challenge in nanotechnology is the parallel fabrication of complex geometries for nanodevi...
The nanoscale organization of functional (bio)molecules on solid substrates with nanoscale spatial r...
The nanoscale organization of functional (bio)molecules on solid substrates with nanoscale spatial r...
The nanoscale organization of functional (bio)molecules on solid substrates with nanoscale spatial r...
The nanoscale organization of functional (bio)molecules on solid substrates with nanoscale spatial r...
The nanoscale organization of functional (bio)molecules on solid substrates with nanoscale spatial r...
The generation of arbitrary patterns and shapes at very small scales is at the heart of our effort t...
Nanotechnology often exploits DNA origami nanostructures assembled into even larger superstructures ...
Artificial DNA nanostructures show promise for the organization of functional materials to create na...
Artificial DNA nanostructures, such as DNA origami, have great potential as templates for the bottom...
DNA origami is a modular platform for the combination of molecular and colloidal components to creat...
DNA origami has become an established technique for designing well-defined nanostructures with any d...
DNA origami is a modular platform for the combination of molecular and colloidal components to creat...
The controlled positioning of DNA nanostructures on technologically relevant surfaces represents a m...
An orthogonal, noncovalent approach to direct the assembly of higher-order DNA origami nanostructure...
A central challenge in nanotechnology is the parallel fabrication of complex geometries for nanodevi...
The nanoscale organization of functional (bio)molecules on solid substrates with nanoscale spatial r...
The nanoscale organization of functional (bio)molecules on solid substrates with nanoscale spatial r...
The nanoscale organization of functional (bio)molecules on solid substrates with nanoscale spatial r...
The nanoscale organization of functional (bio)molecules on solid substrates with nanoscale spatial r...
The nanoscale organization of functional (bio)molecules on solid substrates with nanoscale spatial r...
The generation of arbitrary patterns and shapes at very small scales is at the heart of our effort t...
Nanotechnology often exploits DNA origami nanostructures assembled into even larger superstructures ...