We predict that localized surface plasmons (LSP) in semiconductor particles exhibit spatial nonlocal response effects as the geometry enters the nanometer scale. To investigate these nonlocal effects, we first apply the hydrodynamic model (HDM) to nanospheres of two different semiconductor materials: intrinsic InSb and n-doped GaAs. Our results show that the semiconductors indeed display nonlocal effects, and that these effects are even more pronounced than in metals, and more tunable as well. We also present a two-fluid hydrodynamic model for semiconductors containing electrons and holes (from thermal or external excitation) or light and heavy holes (in p-doped materials). The two-fluid model predicts the existence of two longitudinal mode...
The advances in recent nanofabrication techniques have facilitated explorations of metal structures ...
Semiclassical nonlocal optics based on the hydrodynamic description of conduction electrons might be...
Historically, the field of plasmonics has been relying on the framework of classical electrodynamics...
Localized surface plasmons (LSP) in semiconductor particles are expected to exhibit spatial nonlocal...
Inspired by recent measurements on individual metallic nanospheres that cannot be explained with tra...
The field of plasmonics investigates how electromagnetic fields can be confined into sub- wavelength...
ABSTRACT: Semiclassical nonlocal optics based on the hydrodynamic description of conduction electron...
Since deep nanoscale systems are increasingly studied, accurate macroscopic theories dealing with qu...
Spatial nonlocality in the optical response of noble metals is shown to produce significant blue shi...
The interaction between light and plasmonic structures at the deep-nanometer scale, which is essenti...
We have carried out an explicit closed-form determination of the inverse dielectric function for a s...
The electromagnetic properties of plasmonic nano-Antennas and scatterers with the characteristic dim...
International audienceRecent experiments have shown that spatial dispersion may have a conspicuous i...
Nonlocal and quantum effects play an important role in accurately modeling the optical response of n...
© 2017 IOP Publishing Ltd. In this work, we present a rigorous approach for analyzing the optical re...
The advances in recent nanofabrication techniques have facilitated explorations of metal structures ...
Semiclassical nonlocal optics based on the hydrodynamic description of conduction electrons might be...
Historically, the field of plasmonics has been relying on the framework of classical electrodynamics...
Localized surface plasmons (LSP) in semiconductor particles are expected to exhibit spatial nonlocal...
Inspired by recent measurements on individual metallic nanospheres that cannot be explained with tra...
The field of plasmonics investigates how electromagnetic fields can be confined into sub- wavelength...
ABSTRACT: Semiclassical nonlocal optics based on the hydrodynamic description of conduction electron...
Since deep nanoscale systems are increasingly studied, accurate macroscopic theories dealing with qu...
Spatial nonlocality in the optical response of noble metals is shown to produce significant blue shi...
The interaction between light and plasmonic structures at the deep-nanometer scale, which is essenti...
We have carried out an explicit closed-form determination of the inverse dielectric function for a s...
The electromagnetic properties of plasmonic nano-Antennas and scatterers with the characteristic dim...
International audienceRecent experiments have shown that spatial dispersion may have a conspicuous i...
Nonlocal and quantum effects play an important role in accurately modeling the optical response of n...
© 2017 IOP Publishing Ltd. In this work, we present a rigorous approach for analyzing the optical re...
The advances in recent nanofabrication techniques have facilitated explorations of metal structures ...
Semiclassical nonlocal optics based on the hydrodynamic description of conduction electrons might be...
Historically, the field of plasmonics has been relying on the framework of classical electrodynamics...