Electron and lattice dynamics following optical excitation of metals

Citation
J. Hohlfeld et al., Electron and lattice dynamics following optical excitation of metals, CHEM PHYS, 251(1-3), 2000, pp. 237-258
Citations number
72
Categorie Soggetti
Physical Chemistry/Chemical Physics
Journal title
CHEMICAL PHYSICS
ISSN journal
03010104 → ACNP
Volume
251
Issue
1-3
Year of publication
2000
Pages
237 - 258
Database
ISI
SICI code
0301-0104(20000101)251:1-3<237:EALDFO>2.0.ZU;2-Y
Abstract
New results about relaxation dynamics of optically excited electrons in met als, mostly gold and nickel films, are presented. Emphasis is on electron t emperature near the surface as well as on the range of energy transport by ballistic and diffusive electron motion in comparison to the optical penetr ation depth. The experiments focus on the interval between creation of an e lectron temperature and the time at which thermal equilibrium between elect rons and lattice is reached. Results were obtained by time-resolved linear and second-harmonic reflectivity measurements carried out in pump-probe mod e. It is shown that the two-temperature model is well, suited to describe h ot electron diffusion in metals and to extract electron-phonon coupling con stants from experimental data, provided corrections for ballistic electron motion are incorporated. The electron-phonon coupling constant of gold was found to be independent of film thickness down to 10 nm. For noble metals, probe reflectivities near the interband transition were related to electron temperatures by a proper model for the dielectric function. For transition metals such relation between reflectivity and electron temperature is more difficult. A new pump-pump-probe technique was introduced which allows to study hot electron relaxation by probing the reflectivity in thermal equili brium between electrons and lattice. Also these results can be well describ ed by the two-temperature model. Finally, the interface sensitivity of the second harmonic was utilized to detect vibrational motion and thermal expan sion of ultrathin nickel films on Cu(001). (C) 2000 Elsevier Science B.V. A ll rights reserved.