Nonlocal and quantum effects play an important role in accurately modeling the optical response of nanometer-sized metallic nanoparticles. These effects cannot be described by conventional classical theories, as they neglect essential microscopic details. Quantum hydrodynamic theory (QHT) has emerged as an excellent tool to correctly predict the nonlocal and quantum effects by taking into account the spatial dependence of the charge density. In this article, we used a QHT to investigate the impact of nonlocality and electron spill-out on the plasmonic behavior of spherical Na and Au nanoshells. We adopted a self-consistent way to compute the equilibrium charge density. The results predicted by QHT were compared with those obtained with the ...
The field of plasmonics investigates how electromagnetic fields can be confined into sub- wavelength...
In order to describe light-matter interaction at deep-nanometer scale, which is governed by nonclass...
ABSTRACT: For metallic nanoparticles less than 10 nm in diameter, localized surface plasmon resonanc...
The interaction between light and plasmonic structures at the deep-nanometer scale, which is essenti...
Resumen del trabajo presentado al CECAM workshop on: "Computational plasmonics: an ab initio and mul...
Since deep nanoscale systems are increasingly studied, accurate macroscopic theories dealing with qu...
The standard hydrodynamic Drude model with hard-wall boundary conditions can give accurate quantitat...
Contrary to classical predictions, the optical response of few-nm plasmonic particles depends on par...
Inspired by recent measurements on individual metallic nanospheres that can not be explained with tr...
Plasmonic response of the metallic structure characterized by sub-nanometer dielectric gaps can be s...
205 p.This thesis theoretically addresses the optoelectronic response of metallic nanoparticles (MNP...
Metallic nanoparticles exhibit localized surface plasmonic resonance (LSPR) with peak energy depende...
We analytically characterize the influence of a neighboring metal nanoparticle (MNP) on the behavior...
Using a fully quantum mechanical approach we study the optical response of a strongly coupled metall...
ABSTRACT: Semiclassical nonlocal optics based on the hydrodynamic description of conduction electron...
The field of plasmonics investigates how electromagnetic fields can be confined into sub- wavelength...
In order to describe light-matter interaction at deep-nanometer scale, which is governed by nonclass...
ABSTRACT: For metallic nanoparticles less than 10 nm in diameter, localized surface plasmon resonanc...
The interaction between light and plasmonic structures at the deep-nanometer scale, which is essenti...
Resumen del trabajo presentado al CECAM workshop on: "Computational plasmonics: an ab initio and mul...
Since deep nanoscale systems are increasingly studied, accurate macroscopic theories dealing with qu...
The standard hydrodynamic Drude model with hard-wall boundary conditions can give accurate quantitat...
Contrary to classical predictions, the optical response of few-nm plasmonic particles depends on par...
Inspired by recent measurements on individual metallic nanospheres that can not be explained with tr...
Plasmonic response of the metallic structure characterized by sub-nanometer dielectric gaps can be s...
205 p.This thesis theoretically addresses the optoelectronic response of metallic nanoparticles (MNP...
Metallic nanoparticles exhibit localized surface plasmonic resonance (LSPR) with peak energy depende...
We analytically characterize the influence of a neighboring metal nanoparticle (MNP) on the behavior...
Using a fully quantum mechanical approach we study the optical response of a strongly coupled metall...
ABSTRACT: Semiclassical nonlocal optics based on the hydrodynamic description of conduction electron...
The field of plasmonics investigates how electromagnetic fields can be confined into sub- wavelength...
In order to describe light-matter interaction at deep-nanometer scale, which is governed by nonclass...
ABSTRACT: For metallic nanoparticles less than 10 nm in diameter, localized surface plasmon resonanc...