We study the electromagnetic response of smooth gold nanoparticles with shapes varying from a single sphere to two ellipsoids joined smoothly at their vertices. We show that the plasmonic resonance visible in the extinction and absorption cross sections shifts to longer wavelengths and eventually disappears as the mid-plane waist of the composite particle becomes narrower. This process corresponds to an increase of the numbers of internal and scattering modes that are mainly confined to the surface and coupled to the incident field. These modes strongly affect the near field, and therefore are of great importance in surface spectroscopy, but are almost undetectable in the far field
The optical properties of metallic nanoparticles (NPs) can be described with analytical models based...
We present experimental and theoretical results for the changes in the optical-plasmon resonance of ...
The optical properties of gold in the visible are dominated by the response of the free conduction e...
We study the electromagnetic response of smooth gold nanoparticles with shapes varying from a single...
The optical properties of gold in the visible are dominated by the response of the free conduction e...
Silver (Ag) and gold (Au) nanoparticles are known to have very strong plasmonic fields among the oth...
Treballs Finals de Grau de Física, Facultat de Física, Universitat de Barcelona, Curs: 2018, Tutor: ...
The optical resonances of individual plasmonic dimer antennas are investigated using confocal darkfi...
The optical resonances of individual plasmonic dimer antennas are investigated using confocal darkfi...
The optical resonances of individual plasmonic dimer antennas are investigated using confocal darkfi...
Single particle microscopy and spectroscopy strategies reveal hidden relationships between the surfa...
We study the behavior of plasmon resonances of metal nanospheres embedded in an absorbing medium. Fi...
This is the final version. Available on open access from the Royal Society via the DOI in this recor...
11 pags., 8 figs. -- OCIS codes: (240.6680) Surface plasmons; (350.4990) ParticlesThe optical resona...
The optical response of ring-shaped gold nanoparticles prepared by colloidal lithography is investig...
The optical properties of metallic nanoparticles (NPs) can be described with analytical models based...
We present experimental and theoretical results for the changes in the optical-plasmon resonance of ...
The optical properties of gold in the visible are dominated by the response of the free conduction e...
We study the electromagnetic response of smooth gold nanoparticles with shapes varying from a single...
The optical properties of gold in the visible are dominated by the response of the free conduction e...
Silver (Ag) and gold (Au) nanoparticles are known to have very strong plasmonic fields among the oth...
Treballs Finals de Grau de Física, Facultat de Física, Universitat de Barcelona, Curs: 2018, Tutor: ...
The optical resonances of individual plasmonic dimer antennas are investigated using confocal darkfi...
The optical resonances of individual plasmonic dimer antennas are investigated using confocal darkfi...
The optical resonances of individual plasmonic dimer antennas are investigated using confocal darkfi...
Single particle microscopy and spectroscopy strategies reveal hidden relationships between the surfa...
We study the behavior of plasmon resonances of metal nanospheres embedded in an absorbing medium. Fi...
This is the final version. Available on open access from the Royal Society via the DOI in this recor...
11 pags., 8 figs. -- OCIS codes: (240.6680) Surface plasmons; (350.4990) ParticlesThe optical resona...
The optical response of ring-shaped gold nanoparticles prepared by colloidal lithography is investig...
The optical properties of metallic nanoparticles (NPs) can be described with analytical models based...
We present experimental and theoretical results for the changes in the optical-plasmon resonance of ...
The optical properties of gold in the visible are dominated by the response of the free conduction e...