Deoxyribonucleic acid (DNA) origami [1] is expected to be a nanoscale functional block for Nano Electro Mechanical Systems (NEMS). It can be assembled on a substrate containing other MEMS components to realize a NEMS device in which nanostructures play an important role. We recently demonstrated a tapping mode atomic force microscopy (AFM) process that can manipulate DNA origami structures in liquid to desired positions with controlled orientations, which is a novel process that will eventually allow the constructions of complex nanostructures on substrate surfaces. The manipulation of DNA origami nanotubes with 6 nm in diameter and 400 nm in length placed on a mica substrate was executed by tapping mode AFM with 0-10 nm amplitude. The ac...
DNA nanotechnology has developed a versatile set of methods to utilise DNA self-assembly for the bot...
In recent years, hierarchical nanostructures have found applications in fields like diagnostics, med...
The mechanical properties of DNA nanostructures are of widespread interest as applications that expl...
Deoxyribonucleic acid (DNA) origami [1] is expected to be a nanoscale functional block for Nano El...
The nanoscale manipulation of 1D soft and flexible 'DNA origami nanotubes' (DONs) that are 6...
The flexible and precise immobilization of self-organizing DNA nanostructures represents a key step ...
DNA electronics circuits require an efficient way to accurately position and individually manipulate...
DNA origami is a method for constructing 2-dimensional nanostructures with arbitrary shapes, by fold...
DNA origami nanostructures allow for the arrangement of different functionalities such as proteins, ...
Single-molecule pH sensors have been developed by utilizing molecular imaging of pH-responsive shape...
The elasticity of nanomaterial is extremely difficult to be obtained with traditional method due t...
Structural DNA nanotechnology provides a viable route for building from the bottom-up using DNA as c...
DNA origami nanostructures have tremendous potential to serve as versatile platforms in selfassembly...
DNA nanotechnology has developed a versatile set of methods to utilise DNA self-assembly for the bot...
In recent years, hierarchical nanostructures have found applications in fields like diagnostics, med...
The mechanical properties of DNA nanostructures are of widespread interest as applications that expl...
Deoxyribonucleic acid (DNA) origami [1] is expected to be a nanoscale functional block for Nano El...
The nanoscale manipulation of 1D soft and flexible 'DNA origami nanotubes' (DONs) that are 6...
The flexible and precise immobilization of self-organizing DNA nanostructures represents a key step ...
DNA electronics circuits require an efficient way to accurately position and individually manipulate...
DNA origami is a method for constructing 2-dimensional nanostructures with arbitrary shapes, by fold...
DNA origami nanostructures allow for the arrangement of different functionalities such as proteins, ...
Single-molecule pH sensors have been developed by utilizing molecular imaging of pH-responsive shape...
The elasticity of nanomaterial is extremely difficult to be obtained with traditional method due t...
Structural DNA nanotechnology provides a viable route for building from the bottom-up using DNA as c...
DNA origami nanostructures have tremendous potential to serve as versatile platforms in selfassembly...
DNA nanotechnology has developed a versatile set of methods to utilise DNA self-assembly for the bot...
In recent years, hierarchical nanostructures have found applications in fields like diagnostics, med...
The mechanical properties of DNA nanostructures are of widespread interest as applications that expl...