The controlled positioning of DNA nanostructures on technologically relevant surfaces represents a major goal along the route toward the full-scale integration of DNA-based materials into nanoelectronic and sensor devices. Previous attempts to arrange DNA nanostructures into defined arrays mostly relied on top-down lithographic patterning techniques combined with chemical surface functionalization. Here we combine two bottom-up techniques for nanostructure fabrication, i.e., self-organized nanopattern formation and DNA origami self-assembly, in order to demonstrate the electrostatic self-alignment of DNA nanotubes on topographically patterned silicon surfaces. Self-organized nanoscale ripple patterns with periodicities ranging from 20 nm to...
Structural DNA nanotechnology provides a viable route for building from the bottom-up using DNA as c...
Self-assembled DNAnanostructures can be used as scaffolds to organize small functional nanocomponent...
The nanoscale organization of functional (bio)molecules on solid substrates with nanoscale spatial r...
The controlled positioning of DNA nanostructures on technologically relevant surfaces represents a m...
Artificial DNA nanostructures show promise for the organization of functional materials to create na...
Artificial DNA nanostructures show promise for the organization of functional materials to create na...
DNA origami has become an established technique for designing well-defined nanostructures with any d...
Artificial DNA nanostructures, such as DNA origami, have great potential as templates for the bottom...
The nanoscience and nano technology development determine the continual device miniaturization. Unti...
The nanoscience and nano technology development determine the continual device miniaturization. Unti...
The nanoscience and nano technology development determine the continual device miniaturization. Unti...
The nanoscience and nano technology development determine the continual device miniaturization. Unti...
The nanoscience and nano technology development determine the continual device miniaturization. Unti...
The nanoscience and nano technology development determine the continual device miniaturization. Unti...
Structural DNA nanotechnology provides a viable route for building from the bottom-up using DNA as c...
Structural DNA nanotechnology provides a viable route for building from the bottom-up using DNA as c...
Self-assembled DNAnanostructures can be used as scaffolds to organize small functional nanocomponent...
The nanoscale organization of functional (bio)molecules on solid substrates with nanoscale spatial r...
The controlled positioning of DNA nanostructures on technologically relevant surfaces represents a m...
Artificial DNA nanostructures show promise for the organization of functional materials to create na...
Artificial DNA nanostructures show promise for the organization of functional materials to create na...
DNA origami has become an established technique for designing well-defined nanostructures with any d...
Artificial DNA nanostructures, such as DNA origami, have great potential as templates for the bottom...
The nanoscience and nano technology development determine the continual device miniaturization. Unti...
The nanoscience and nano technology development determine the continual device miniaturization. Unti...
The nanoscience and nano technology development determine the continual device miniaturization. Unti...
The nanoscience and nano technology development determine the continual device miniaturization. Unti...
The nanoscience and nano technology development determine the continual device miniaturization. Unti...
The nanoscience and nano technology development determine the continual device miniaturization. Unti...
Structural DNA nanotechnology provides a viable route for building from the bottom-up using DNA as c...
Structural DNA nanotechnology provides a viable route for building from the bottom-up using DNA as c...
Self-assembled DNAnanostructures can be used as scaffolds to organize small functional nanocomponent...
The nanoscale organization of functional (bio)molecules on solid substrates with nanoscale spatial r...