We explore the influence of the nanoporous structure on the thermal relaxation of electrons and holes excited by ultrashort laser pulses (∼7 fs) in thin gold films. Plasmon decay into hot electron-hole pairs results in the generation of a Fermi-Dirac distribution thermalized at a temperature Te higher than the lattice temperature Tl. The relaxation times of the energy exchange between electrons and lattice, here measured by pump-probe spectroscopy, is slowed down by the nanoporous structure, resulting in much higher peak Te than for bulk gold films. The electron-phonon coupling constant and the Debye temperature are found to scale with the metal filling factor f and a two-temperature model reproduces the data. The results open the way for electron temperature control in metals by engineering of the nanoporous geometry.
@article{arxiv.1901.01114,
title = {Pump-probe Spectroscopy Study of Ultrafast Temperature Dynamics in Nanoporous Gold},
author = {Michele Ortolani and Andrea Mancini and Arne Budweg and Denis Garoli and Daniele Brida and Francesco de Angelis},
journal= {arXiv preprint arXiv:1901.01114},
year = {2019}
}
Comments
6 pages, 3 figures, submitted to Physical Review B