In the past decade, DNA origami self-assembly has been widely applied for creating customised nanostructures with base-pair precision. In this technique, the unique chemical addressability of DNA can be harnessed to create programmable architectures, using components ranging from dye or protein molecules to metallic nanoparticles. In this thesis, we apply DNA nanotechnology for developing novel light-harvesting and optical voltage sensing nano-devices. We use the programmable positioning of dye molecules on a DNA origami plate as a mimic of a light-harvesting antenna complex required for photosynthesis. Such a structure allows us to systematically analyse optimal design concepts using different dye arrangements. Complementary to this, we us...
DNA based nanostructures and advances in DNA origami techniques have shown great potential in fabric...
DNA nanotechnology provides an excellent foundation for diverse nanoscale structures that can be us...
The DNA origami technique can enable functionalization of inorganic structures for single-molecule e...
We explore the potential of DNA nanotechnology for developing novel optical voltage sensing nanodevi...
We explore the potential of DNA nanotechnology for developing novel optical voltage sensing nanodevi...
Signal transmission in neurons goes along with changes in the transmembrane potential. To report the...
The specificity and simplicity of the Watson–Crick base pair interactions make DNA one of the most v...
DNA nanotechnology provides an excellent foundation for diverse nanoscale structures that can be use...
We show DNA origami nanopores that respond to high voltages by a change in conformation on glass nan...
The DNA origami technique provides an unprecedented method to create multiple copies of well-defined...
DNA nanotechnology provides an excellent foundation for diverse nanoscale structures that can be use...
Optical biosensing with single-molecule sensitivity requires high performant fluorescent probes. Man...
In this thesis, the potential applications of DNA self-assembled structures were explored in both n...
The DNA origami technique can enable functionalization of inorganic structures for single-molecule e...
DNA nanotechnology is a powerful and promising tool for the development of nanoscale devices for nu...
DNA based nanostructures and advances in DNA origami techniques have shown great potential in fabric...
DNA nanotechnology provides an excellent foundation for diverse nanoscale structures that can be us...
The DNA origami technique can enable functionalization of inorganic structures for single-molecule e...
We explore the potential of DNA nanotechnology for developing novel optical voltage sensing nanodevi...
We explore the potential of DNA nanotechnology for developing novel optical voltage sensing nanodevi...
Signal transmission in neurons goes along with changes in the transmembrane potential. To report the...
The specificity and simplicity of the Watson–Crick base pair interactions make DNA one of the most v...
DNA nanotechnology provides an excellent foundation for diverse nanoscale structures that can be use...
We show DNA origami nanopores that respond to high voltages by a change in conformation on glass nan...
The DNA origami technique provides an unprecedented method to create multiple copies of well-defined...
DNA nanotechnology provides an excellent foundation for diverse nanoscale structures that can be use...
Optical biosensing with single-molecule sensitivity requires high performant fluorescent probes. Man...
In this thesis, the potential applications of DNA self-assembled structures were explored in both n...
The DNA origami technique can enable functionalization of inorganic structures for single-molecule e...
DNA nanotechnology is a powerful and promising tool for the development of nanoscale devices for nu...
DNA based nanostructures and advances in DNA origami techniques have shown great potential in fabric...
DNA nanotechnology provides an excellent foundation for diverse nanoscale structures that can be us...
The DNA origami technique can enable functionalization of inorganic structures for single-molecule e...