Investigation of pulsed laser induced dewetting in nanoscopic metal films
arXiv:cond-mat/0609182 · doi:10.1103/PhysRevB.75.235439
Abstract
Hydrodynamic pattern formation (PF) and dewetting resulting from pulsed laser induced melting of nanoscopic metal films have been used to create spatially ordered metal nanoparticle arrays with monomodal size distribution on SiO_{\text{2}}/Si substrates. PF was investigated for film thickness h\leq7 nm < laser absorption depth \sim11 nm and different sets of laser parameters, including energy density E and the irradiation time, as measured by the number of pulses n. PF was only observed to occur for E\geq E_{m}, where E_{m} denotes the h-dependent threshold energy required to melt the film. Even at such small length scales, theoretical predictions for E_{m} obtained from a continuum-level lumped parameter heat transfer model for the film temperature, coupled with the 1-D transient heat equation for the substrate phase, were consistent with experimental observations provided that the thickness dependence of the reflectivity of the metal-substrate bilayer was incorporated into the analysis. The spacing between the nanoparticles and the particle diameter were found to increase as h^{2} and h^{5/3} respectively, which is consistent with the predictions of the thin film hydrodynamic (TFH) dewetting theory. These results suggest that fast thermal processing can lead to novel pattern formation, including quenching of a wide range of length scales and morphologies.
36 pages, 11 figures, 1 table
References in corpus (2)
Cited by in corpus (14)
- Thickness-dependent spontaneous dewetting morphology of ultrathin Ag films
- Self-organized metal nanostructures through laser driven thermocapillary convection
- Dynamics of ultrathin metal films on amorphous substrates
- Thermocapillary effects in driven dewetting and self-assembly of pulsed laser-irradiated metallic films
- Laser-induced surface relief nanocrowns as a manifestation of nanoscale Rayleigh-Plateau hydrodynamic instability
- Thermodynamic approach to the dewetting instability in ultrathin films
- Effective permittivity of random plasmonic composites
- Influence of thermal effects on stability of nanoscale films and filaments on thermally conductive substrates
- Oscillatory thermocapillary instability of a film heated by a thick substrate
- In silico design of metal-dielectric nanocomposites for solar energy applications
- On efficient asymptotic modelling of thin films on thermally conductive substrates
- Using Thermal Crowding to Direct Pattern Formation on the Nanoscale
- Self-assembly of a drop pattern from a two-dimensional grid of nanometric metallic filaments
- Liquid film rupture beyond the thin-film equation: a multi-component lattice Boltzmann study