Metallic nanoparticles can localize the incident light to hot spots as plasmon oscillations, where the intensity can be enhanced by up to four orders of magnitude. Even though the lifetime of plasmons is typically short, it can be increased via interactions with quantum emitters, e.g., spaser nanolasers. However, molecules can bleach in days. Here, we study the lifetime enhancement of plasmon excitations due to the coupling with longer-lifetime dark plasmon modes. We apply an analytical model based on harmonic oscillators to demonstrate that a coupled system of bright and dark plasmon modes decays more slowly than the bright mode alone. Furthermore, exact solutions of the three-dimensional Maxwell equations, i.e., finite-difference time dom...
Metal-film-coupled nanoparticles with subnanometer particle–film gaps possess an ultrasmall mode vol...
In the light−matter strong coupling regime, the excited state of quantum emitters is inextricably l...
In this paper we study, in the time domain, the interaction between localized surface plasmons and p...
Metallic nanoparticles can localize the incident light to hot spots as plasmon oscillations, where t...
We investigate the dynamics of a plasmonic oscillation over a metal nanoparticle when it is strongly...
An ideal plasmonic system for hot-electron generation allows the optical excitation of plasmons, lim...
Hot carriers produced from the decay of localized surface plasmons in metallic nanoparticles are int...
Boundary conditions and dispersion at dielectric-conductor interfaces, together, results in bands of...
In the last few years, hybrid systems consisting of punctual sources and metallic nanostructures hav...
Doctor of PhilosophyDepartment of ChemistryChristine M. AikensPlasmonic materials enhance light-indu...
In the light-matter strong coupling regime, the excited state of quantum emitters is inextricably li...
The integration of metallic plasmonic nanoantennas with quantum emitters can dramatically enhance co...
Noble metal nanoparticles can support localized surface plasmon resonances (LSPR), thus behaving as ...
The inhibition of radiative losses in dark plasmon modes allows storing electromagnetic energy more ...
Localization of incident fields into very small volumes (hot-spots) allows strong light-matter inter...
Metal-film-coupled nanoparticles with subnanometer particle–film gaps possess an ultrasmall mode vol...
In the light−matter strong coupling regime, the excited state of quantum emitters is inextricably l...
In this paper we study, in the time domain, the interaction between localized surface plasmons and p...
Metallic nanoparticles can localize the incident light to hot spots as plasmon oscillations, where t...
We investigate the dynamics of a plasmonic oscillation over a metal nanoparticle when it is strongly...
An ideal plasmonic system for hot-electron generation allows the optical excitation of plasmons, lim...
Hot carriers produced from the decay of localized surface plasmons in metallic nanoparticles are int...
Boundary conditions and dispersion at dielectric-conductor interfaces, together, results in bands of...
In the last few years, hybrid systems consisting of punctual sources and metallic nanostructures hav...
Doctor of PhilosophyDepartment of ChemistryChristine M. AikensPlasmonic materials enhance light-indu...
In the light-matter strong coupling regime, the excited state of quantum emitters is inextricably li...
The integration of metallic plasmonic nanoantennas with quantum emitters can dramatically enhance co...
Noble metal nanoparticles can support localized surface plasmon resonances (LSPR), thus behaving as ...
The inhibition of radiative losses in dark plasmon modes allows storing electromagnetic energy more ...
Localization of incident fields into very small volumes (hot-spots) allows strong light-matter inter...
Metal-film-coupled nanoparticles with subnanometer particle–film gaps possess an ultrasmall mode vol...
In the light−matter strong coupling regime, the excited state of quantum emitters is inextricably l...
In this paper we study, in the time domain, the interaction between localized surface plasmons and p...