Abstract The plasmon resonance of metal nanoparticles shifts upon refractive index changes of the surrounding medium through the binding of analytes. The use of this principle allows one to build ultra-small plasmon sensors that can detect analytes (e.g., biomolecules) in volumes down to attoliters. We use simulations based on the boundary element method to determine the sensitivity of gold nanorods of various aspect ratios for plasmonic sensors and find values between 3 and 4 to be optimal. Experiments on single particles confirm these theoretical results. We are able to explain the optimum by showing a corresponding maximum for the quality factor of the plasmon resonance
Localized surface plasmon resonances (LSPR's) in noble metal nanostructures are sensitive to refract...
<p>The refractive index sensitivity of plasmonic nanoparticles is utilized in the development of rea...
The localised surface plasmon resonance in gold nanoparticles can be used as the basis of a refracto...
cited By 26International audienceWe perform a theoretical investigation of individual and coupled go...
We perform a theoretical investigation of individual and coupled gold nanorods as plasmonic nanosens...
Plasmonic gold nanorods play important roles in nowadays state-of-the-art plasmonic sensing techniqu...
Plasmonic sensors based on ordered arrays of nanoprisms are optimized in terms of their geometric pa...
In our modern society, we are surrounded by numerous sensors, constantly feeding us information abou...
We study the light scattering and surface plasmon resonances of Au nanorods that are commonly used a...
The refractive index sensing properties of plasmonic resonances in gold nanoparticles (nanorods and ...
Combining finite elements method electrodynamic simulations and cost-effective and scalablenan...
Abstract. The theoretical comparison of possible response measurement techniques for a biosensor bas...
Plasmonic nanoparticles support surface plasmon resonances that are sensitive to the environment. Fa...
Over the past few years, the unique localized surface plasmon resonance properties of plasmonic nano...
Single metal nanoparticles are attractive biomolecular sensors. Binding of analyte to a functional p...
Localized surface plasmon resonances (LSPR's) in noble metal nanostructures are sensitive to refract...
<p>The refractive index sensitivity of plasmonic nanoparticles is utilized in the development of rea...
The localised surface plasmon resonance in gold nanoparticles can be used as the basis of a refracto...
cited By 26International audienceWe perform a theoretical investigation of individual and coupled go...
We perform a theoretical investigation of individual and coupled gold nanorods as plasmonic nanosens...
Plasmonic gold nanorods play important roles in nowadays state-of-the-art plasmonic sensing techniqu...
Plasmonic sensors based on ordered arrays of nanoprisms are optimized in terms of their geometric pa...
In our modern society, we are surrounded by numerous sensors, constantly feeding us information abou...
We study the light scattering and surface plasmon resonances of Au nanorods that are commonly used a...
The refractive index sensing properties of plasmonic resonances in gold nanoparticles (nanorods and ...
Combining finite elements method electrodynamic simulations and cost-effective and scalablenan...
Abstract. The theoretical comparison of possible response measurement techniques for a biosensor bas...
Plasmonic nanoparticles support surface plasmon resonances that are sensitive to the environment. Fa...
Over the past few years, the unique localized surface plasmon resonance properties of plasmonic nano...
Single metal nanoparticles are attractive biomolecular sensors. Binding of analyte to a functional p...
Localized surface plasmon resonances (LSPR's) in noble metal nanostructures are sensitive to refract...
<p>The refractive index sensitivity of plasmonic nanoparticles is utilized in the development of rea...
The localised surface plasmon resonance in gold nanoparticles can be used as the basis of a refracto...