Percolative aspects of nonequilibrium adlayer structure
Author(s) -
J. W. Evans,
D. B. Sanders
Publication year - 1988
Publication title -
journal of vacuum science and technology a vacuum surfaces and films
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.583
H-Index - 112
eISSN - 1520-8559
pISSN - 0734-2101
DOI - 10.1116/1.575163
Subject(s) - nucleation , coalescence (physics) , percolation threshold , non equilibrium thermodynamics , cluster (spacecraft) , percolation theory , chemical physics , percolation (cognitive psychology) , square lattice , directed percolation , fractal , statistical physics , percolation critical exponents , materials science , condensed matter physics , physics , chemistry , thermodynamics , mathematics , ising model , conductivity , electrical resistivity and conductivity , quantum mechanics , mathematical analysis , neuroscience , astrobiology , biology , computer science , programming language
For any adsorption process where all binding sites eventually fill, there exists a coverage θc at which a filled cluster (defined by linking neighboring filled sites) first spans the substrate. Such percolation features have been studied extensively for random distributions of filled sites. Here θc =0.59 monolayers for ‘‘p(1×1) ordering’’ on an infinite square lattice. Cooperative island‐forming adsorption involves competition between nucleation, growth, and coalescence or linkage of individual islands. Here clusters of linked islands eventually span the substrate. We use correlated percolation theory to provide a quantitative description of corresponding θc behavior, and of the fractal structure of the clusters of linked islands and their perimeters. Modified grain growth models, which correspond to continuum percolation problems, are also useful here. We show how percolation theoretic ideas can be extended to analyze nonpercolating c(2×2) ordering. Even for the essentially random adsorption mechanisms o...
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