Transition from droplet growth to percolation: Monte Carlo simulations andan analytical model - art. no. 245408

Citation
J. Carrey et Jl. Maurice, Transition from droplet growth to percolation: Monte Carlo simulations andan analytical model - art. no. 245408, PHYS REV B, 6324(24), 2001, pp. 5408
Citations number
13
Categorie Soggetti
Apllied Physucs/Condensed Matter/Materiales Science
Journal title
PHYSICAL REVIEW B
ISSN journal
01631829 → ACNP
Volume
6324
Issue
24
Year of publication
2001
Database
ISI
SICI code
0163-1829(20010615)6324:24<5408:TFDGTP>2.0.ZU;2-2
Abstract
Depositing st metal on an oxide or carbon substrate often leads to the form ation of clusters which grow like droplets and percolate into zebra-striped structures. We study this phenomenon for different dimensionalities of the clusters and the substrate with two methods: an analytical model which is a generalization of the one presented by Jeffers et al. [J. Appl. Phys., 75 , 5016 (1994)] and with kinetic Monte Carlo simulations (KMCS's). These KMC S's are the first which include the coalescence duration of clusters in a d eposit, so they are able to simulate the whole cluster growth during atom d eposition on a surface, from nucleation to percolation. They reproduce very realistically the experimental evolution of deposits obtained by other gro ups studying the growth of three-dimensional (3D) clusters on a 2D substrat e. We show that one can define a deposited thickness where the transition b etween the regime of droplet growth and percolation occurs. This deposited thickness is well defined both analytically and experimentally. The analyti cal model and the KMCS show that this transition thickness is proportional to (BIF)(alpha), where F is the deposition rate, B is inversely proportiona l to the cluster coalescence speed, and alpha depends on the dimensionality of the clusters and the substrate The values of alpha extracted from the m odel and from the KMCS are in good agreement.