We report that plasmonic nanoantennas made by DNA origami can be used as reliable and efficient probes for surface-enhanced Raman spectroscopy (SERS). The nanoantenna is built up by two gold nanoparticles that are linked together by a three-layered DNA origami block at a separation distance of 6 nm in order to achieve plasmonic coupling and the formation of a plasmonic “hot spot”. The plasmonic properties of the hybrid structure are optically characterized by dark-field imaging and polarization-dependent spectroscopy. SERS measurements on molecules that are embedded in the DNA origami that bridges the nanoantenna gap were performed in order to demonstrate the excellent performance of these structures for enhancing spectroscopic signals. A s...
The DNA origami technique provides an unprecedented method to create multiple copies of well-defined...
We report that rhomb-shaped metal nanoantenna arrays support multiple plasmonic resonances, making t...
Manipulating light on the nanometer scale is a challenging topic not only from a fundamental point o...
DNA origami is a novel self-assembly technique allowing one to form various 2D shapes and position m...
DNA origami technology allows for the precise nanoscale assembly of chemical entities that give rise...
DNA nanotechnology holds great promise for the fabrication of novel plasmonic nanostructures and the...
DNA origami is a novel self-assembly technique allowing one to form various two-dimensional shapes a...
DNA origami is a powerful approach for assembling plasmonic nanoparticle dimers and Raman...
Plasmonic sensors are extremely promising candidates for label-free single-molecule analysis but req...
<p>DNA origami is a novel self-assembly technique that can be used to form various </p><p>2D and 3D ...
Plasmonic sensors are extremely promising candidates for label-free single-molecule analysis but req...
Engineering hotspots in surface-enhanced Raman spectroscopy (SERS) through precisely controlled asse...
This paper introduces an approach that enables highly adjustable surface adsorption of single plasmo...
We demonstrate the synthesis of Au nanostar dimers with tunable interparticle gap and controlled sto...
Funding Information: This work is part of the Academy of Finland Flagship Programme, Photonics Resea...
The DNA origami technique provides an unprecedented method to create multiple copies of well-defined...
We report that rhomb-shaped metal nanoantenna arrays support multiple plasmonic resonances, making t...
Manipulating light on the nanometer scale is a challenging topic not only from a fundamental point o...
DNA origami is a novel self-assembly technique allowing one to form various 2D shapes and position m...
DNA origami technology allows for the precise nanoscale assembly of chemical entities that give rise...
DNA nanotechnology holds great promise for the fabrication of novel plasmonic nanostructures and the...
DNA origami is a novel self-assembly technique allowing one to form various two-dimensional shapes a...
DNA origami is a powerful approach for assembling plasmonic nanoparticle dimers and Raman...
Plasmonic sensors are extremely promising candidates for label-free single-molecule analysis but req...
<p>DNA origami is a novel self-assembly technique that can be used to form various </p><p>2D and 3D ...
Plasmonic sensors are extremely promising candidates for label-free single-molecule analysis but req...
Engineering hotspots in surface-enhanced Raman spectroscopy (SERS) through precisely controlled asse...
This paper introduces an approach that enables highly adjustable surface adsorption of single plasmo...
We demonstrate the synthesis of Au nanostar dimers with tunable interparticle gap and controlled sto...
Funding Information: This work is part of the Academy of Finland Flagship Programme, Photonics Resea...
The DNA origami technique provides an unprecedented method to create multiple copies of well-defined...
We report that rhomb-shaped metal nanoantenna arrays support multiple plasmonic resonances, making t...
Manipulating light on the nanometer scale is a challenging topic not only from a fundamental point o...