DNA origami is a novel self-assembly technique allowing one to form various two-dimensional shapes and position matter with nanometer accuracy. We use DNA origami templates to engineer surface-enhanced Raman scattering substrates. Specifically, gold nanoparticles were selectively placed on the corners of rectangular origami and subsequently enlarged via solution-based metal deposition. The resulting assemblies exhibit “hot spots” of enhanced electromagnetic field between the nanoparticles. We observed a significant Raman signal enhancement from molecules covalently attached to the assemblies, as compared to control nanoparticle samples that lack interparticle hot spots. Furthermore, Raman molecules are used to map out the hot spots’ distrib...
This paper introduces an approach that enables highly adjustable surface adsorption of single plasmo...
AbstractSurface-enhanced Raman scattering (SERS) is a promising technology owing to its single-molec...
Arraying noble metal nanoparticles with nanoscale features is an important way to develop plasmonic ...
DNA origami is a novel self-assembly technique allowing one to form various two-dimensional shapes a...
DNA origami is a novel self-assembly technique allowing one to form various 2D shapes and position m...
<p>DNA origami is a novel self-assembly technique that can be used to form various </p><p>2D and 3D ...
DNA nanotechnology holds great promise for the fabrication of novel plasmonic nanostructures and the...
Plasmonic sensors are extremely promising candidates for label-free single-molecule analysis but req...
DNA origami is a powerful approach for assembling plasmonic nanoparticle dimers and Raman...
We report that plasmonic nanoantennas made by DNA origami can be used as reliable and efficient prob...
Plasmonic sensors are extremely promising candidates for label-free single-molecule analysis but req...
DNA origami technology allows for the precise nanoscale assembly of chemical entities that give rise...
Structural DNA nanotechnology provides a viable route for building from the bottom-up using DNA as c...
In the EU-funded project DeDNAed, DNA Origami is used as a nano-breadboard to integrate a biological...
Programmable self-assembly of nucleic acids enables the fabrication of custom, precise objects with ...
This paper introduces an approach that enables highly adjustable surface adsorption of single plasmo...
AbstractSurface-enhanced Raman scattering (SERS) is a promising technology owing to its single-molec...
Arraying noble metal nanoparticles with nanoscale features is an important way to develop plasmonic ...
DNA origami is a novel self-assembly technique allowing one to form various two-dimensional shapes a...
DNA origami is a novel self-assembly technique allowing one to form various 2D shapes and position m...
<p>DNA origami is a novel self-assembly technique that can be used to form various </p><p>2D and 3D ...
DNA nanotechnology holds great promise for the fabrication of novel plasmonic nanostructures and the...
Plasmonic sensors are extremely promising candidates for label-free single-molecule analysis but req...
DNA origami is a powerful approach for assembling plasmonic nanoparticle dimers and Raman...
We report that plasmonic nanoantennas made by DNA origami can be used as reliable and efficient prob...
Plasmonic sensors are extremely promising candidates for label-free single-molecule analysis but req...
DNA origami technology allows for the precise nanoscale assembly of chemical entities that give rise...
Structural DNA nanotechnology provides a viable route for building from the bottom-up using DNA as c...
In the EU-funded project DeDNAed, DNA Origami is used as a nano-breadboard to integrate a biological...
Programmable self-assembly of nucleic acids enables the fabrication of custom, precise objects with ...
This paper introduces an approach that enables highly adjustable surface adsorption of single plasmo...
AbstractSurface-enhanced Raman scattering (SERS) is a promising technology owing to its single-molec...
Arraying noble metal nanoparticles with nanoscale features is an important way to develop plasmonic ...