A small gap between metal nanoparticles provides a strong local field enhancement when illuminated with light. This local field enhancement has proven to be very useful to enhance the response in Raman spectroscopy and may even contribute to increased efficiency in solar cells. Here, the nature of the field enhancement and the effect on the optical absorption spectrum has been identified by measuring the electro-magnetic fields within and outside the nanoparticle gap. Time resolved measurement of the electric field component showed that the plasmon resonance within the gap lives much longer than the excitation pulse duration. These results elucidate the optical properties of the plasmonic gap and provide ideas for future research
Metals support surface plasmons at optical wavelengths and have the ability to localize light to sub...
Metallic nanoparticles can localize the incident light to hot spots as plasmon oscillations, where t...
Metal nanoparticles interact strongly with light due to a resonant response of their free electrons....
Metal nanostructures act as powerful optical antennas1, 2 because collective modes of the electron f...
ABSTRACT: The plasmonic resonances in individual gold nanorods nanoscopically coupled to a gold film...
Gap-enhanced Raman tags are a new type of optical probe that have wide applications in sensing and d...
The electromagnetic field enhancement factors by gap plasmons between two spherical metal particles ...
Resumen del trabajo presentado al 5th International Topical meeting on Nanophotonics and Metamateria...
The gap-plasmon resonance of a gold nanoparticle inside a nanopore in an aluminum film is investigat...
The gap-plasmon resonance of a gold nanoparticle inside a nanopore in an aluminum film is investigat...
Motivated by recent experiments, we present here a theoretical analysis of the optical response of s...
The excitation of surface plasmon from individual silver nanowires and gold nanorods is investigated...
ABSTRACT: Pairs of metal nanoparticles with a sub-10 nm gap are an efficient way to achieve extreme ...
In this thesis, we use plasmonic materials to achieve enhanced optical properties, including the enh...
Engineering of plasmon resonances is important for a variety of applications, including but not limi...
Metals support surface plasmons at optical wavelengths and have the ability to localize light to sub...
Metallic nanoparticles can localize the incident light to hot spots as plasmon oscillations, where t...
Metal nanoparticles interact strongly with light due to a resonant response of their free electrons....
Metal nanostructures act as powerful optical antennas1, 2 because collective modes of the electron f...
ABSTRACT: The plasmonic resonances in individual gold nanorods nanoscopically coupled to a gold film...
Gap-enhanced Raman tags are a new type of optical probe that have wide applications in sensing and d...
The electromagnetic field enhancement factors by gap plasmons between two spherical metal particles ...
Resumen del trabajo presentado al 5th International Topical meeting on Nanophotonics and Metamateria...
The gap-plasmon resonance of a gold nanoparticle inside a nanopore in an aluminum film is investigat...
The gap-plasmon resonance of a gold nanoparticle inside a nanopore in an aluminum film is investigat...
Motivated by recent experiments, we present here a theoretical analysis of the optical response of s...
The excitation of surface plasmon from individual silver nanowires and gold nanorods is investigated...
ABSTRACT: Pairs of metal nanoparticles with a sub-10 nm gap are an efficient way to achieve extreme ...
In this thesis, we use plasmonic materials to achieve enhanced optical properties, including the enh...
Engineering of plasmon resonances is important for a variety of applications, including but not limi...
Metals support surface plasmons at optical wavelengths and have the ability to localize light to sub...
Metallic nanoparticles can localize the incident light to hot spots as plasmon oscillations, where t...
Metal nanoparticles interact strongly with light due to a resonant response of their free electrons....