Plasmon-driven sub-picosecond breathing of metal nanoparticles
Abstract
We present the first real-time atomistic simulation on the quantum dynamics of icosahedral silver nanoparticles under strong laser pulses, using time dependent density functional theory (TDDFT) molecular dynamics. We identify the emergence of sub-picosecond breathing-like radial oscillations starting immediately after laser pulse excitation, with increasing amplitude as the field intensity increases. The ultrafast dynamic response of nanoparticles to laser excitation points to a new mechanism other than equilibrium electron-phonon scattering previously assumed, which takes a much longer timescale. A sharp weakening of all bonds during laser excitation is observed, thanks to plasmon damping into excited electrons in anti-bonding states. This sudden weakening of bonds leads to a uniform expansion of the nanoparticles and launches coherent breathing oscillations.
Más información
Título según WOS: | ID WOS:000409215300020 Not found in local WOS DB |
Título de la Revista: | Nanoscale |
Volumen: | 9 |
Número: | 34 |
Editorial: | ROYAL SOC CHEMISTRY |
Fecha de publicación: | 2017 |
Página de inicio: | 12391 |
Página final: | 12397 |
DOI: |
10.1039/c7nr04536k |
Notas: | ISI |