Using large-scale, real-time, quantum dynamics calculations, we present a detailed analysis of electronic excitation transfer (EET) mechanisms in a multiparticle plasmonic nanoantenna system. Specifically, we utilize real-time, time-dependent, density functional tight binding (RT-TDDFTB) to provide a quantum-mechanical description (at an electronic/atomistic level of detail) for characterizing and analyzing these systems, without recourse to classical approximations. We also demonstrate highly long-range electronic couplings in these complex systems and find that the range of these couplings is more than twice the conventional cutoff limit considered by Förster resonance energy transfer (FRET)-based approaches. Furthermore, we attribute the...
Thesis (Ph.D.)--University of Washington, 2017-03Coherent and collective charge oscillations in meta...
We present the first real-time atomistic simulation on the quantum dynamics of icosahedral silver na...
The efficiency of plasmonic metallic nanoparticles in harvesting and concentrating light energy in t...
Using large-scale, real-time, quantum dynamics calculations, we present a detailed analysis of elect...
We present a detailed analysis of the electronic couplings that mediate excitation energy transfer (...
The optical response of a system formed by a quantum emitter and a plasmonic gap nanoantenna is theo...
International audienceThe optical response of a system formed by a quantum emitter and a plasmonic g...
Large, complex chemical and material systems are extremely difficult to calculate with current densi...
We study the plasmonic energy transfer from a locally excited nanoparticle (LE-NP) to a linear array...
The optical properties of molecules close to plasmonic nanostructures greatly differ from their isol...
We investigate the dynamics of a plasmonic oscillation over a metal nanoparticle when it is strongly...
205 p.This thesis theoretically addresses the optoelectronic response of metallic nanoparticles (MNP...
In the new field of quantum plasmonics, plasmonic excitations of silver and gold nanoparticles are u...
Aeschlimann M, Brixner T, Cinchetti M, et al. Cavity-assisted ultrafast long-range periodic energy t...
Coupling molecular excitons and localized surface plasmons in hybrid nanostructures leads to appeali...
Thesis (Ph.D.)--University of Washington, 2017-03Coherent and collective charge oscillations in meta...
We present the first real-time atomistic simulation on the quantum dynamics of icosahedral silver na...
The efficiency of plasmonic metallic nanoparticles in harvesting and concentrating light energy in t...
Using large-scale, real-time, quantum dynamics calculations, we present a detailed analysis of elect...
We present a detailed analysis of the electronic couplings that mediate excitation energy transfer (...
The optical response of a system formed by a quantum emitter and a plasmonic gap nanoantenna is theo...
International audienceThe optical response of a system formed by a quantum emitter and a plasmonic g...
Large, complex chemical and material systems are extremely difficult to calculate with current densi...
We study the plasmonic energy transfer from a locally excited nanoparticle (LE-NP) to a linear array...
The optical properties of molecules close to plasmonic nanostructures greatly differ from their isol...
We investigate the dynamics of a plasmonic oscillation over a metal nanoparticle when it is strongly...
205 p.This thesis theoretically addresses the optoelectronic response of metallic nanoparticles (MNP...
In the new field of quantum plasmonics, plasmonic excitations of silver and gold nanoparticles are u...
Aeschlimann M, Brixner T, Cinchetti M, et al. Cavity-assisted ultrafast long-range periodic energy t...
Coupling molecular excitons and localized surface plasmons in hybrid nanostructures leads to appeali...
Thesis (Ph.D.)--University of Washington, 2017-03Coherent and collective charge oscillations in meta...
We present the first real-time atomistic simulation on the quantum dynamics of icosahedral silver na...
The efficiency of plasmonic metallic nanoparticles in harvesting and concentrating light energy in t...