English

Dealloying of Platinum-Aluminum Thin Films Part I. Dynamics of Pattern Formation

Materials Science 2011-11-22 v1 Mesoscale and Nanoscale Physics Chemical Physics

Abstract

Applying focused ion beam (FIB) nanotomography and Rutherford backscattering spectroscopy (RBS) to dealloyed platinum-aluminum thin films an in-depth analysis of the dominating physical mechanisms of porosity formation during the dealloying process is performed. The dynamical porosity formation due to the dissolution of the less noble aluminum in the alloy is treated as result of a reaction-diffusion system. The RBS analysis yields that the porosity formation is mainly caused by a linearly propagating diffusion front, i.e. the liquid/solid interface, with a uniform speed of 42(3) nm/s when using a 4M aqueous NaOH solution at room temperature. The experimentally observed front evolution is captured by the normal diffusive Fisher-Kolmogorov-Petrovskii-Piskounov (FKPP) equation and can be interpreted as a branching random walk phenomenon. The etching front produces a gradual porosity with an enhanced porosity in the surface-near regions of the thin film due to prolonged exposure of the alloy to the alkaline solution.

Keywords

Cite

@article{arxiv.1104.4944,
  title  = {Dealloying of Platinum-Aluminum Thin Films Part I. Dynamics of Pattern Formation},
  author = {Henning Galinski and Thomas Ryll and Lukas Schlagenhauf and Felix Rechberger and Sun Ying and Flavio C. F. Mornaghini and Yasmina Ries and Max Döbeli and Ralph Spolenak and Ludwig J. Gauckler},
  journal= {arXiv preprint arXiv:1104.4944},
  year   = {2011}
}

Comments

4 pages, 5 figures