Abstract
The slowing of Pt nanoparticles in argon background gas was characterized by Rayleigh scattering imaging using a plume of nanoparticles generated by femtosecond laser through thin film ablation of 20nm-thick Pt films. The ablation was performed at threshold laser energy fluences for complete film removal to provide a well-defined plume consisting almost entirely of nanoparticles traveling with a narrow velocity distribution, providing a unique system to unambiguously characterize the slowing of nanoparticles during interaction with background gases. Nanoparticles of ∼200nm diameter were found to decelerate in background Ar gas with pressures less than 50Torr in good agreement with a linear drag model in the Epstein regime. Based on this model, the stopping distance of small nanoparticles in the plume was predicted and tested by particle collection in an off-axis geometry, and size distribution analysis by transmission electron microscopy. These results permit a basis to interpret nanoparticle propagation through background gases in laser ablation plumes that contain mixed components.
Original language | English |
---|---|
Article number | 213108 |
Journal | Applied Physics Letters |
Volume | 105 |
Issue number | 21 |
DOIs | |
State | Published - Nov 24 2014 |
Bibliographical note
Publisher Copyright:© 2014 AIP Publishing LLC.