Temporal Evolution of Step-Edge Fluctuations Under Electromigration Conditions
Abstract
The temporal evolution of step-edge fluctuations under electromigration conditions is analysed using a continuum Langevin model. If the electromigration driving force acts in the step up/down direction, and step-edge diffusion is the dominant mass-transport mechanism, we find that significant deviations from the usual scaling of the terrace-width correlation function occurs for a critical time which is dependent upon the three energy scales in the problem: , the step stiffness, , and the bias associated with adatom hopping under the influence of an electromigration force, . For (), the correlation function evolves as a superposition of and power laws. For a closed form expression can be derived. This behavior is confirmed by a Monte-Carlo simulation using a discrete model of the step dynamics. It is proposed that the magnitude of the electromigration force acting upon an atom at a step-edge can by estimated by a careful analysis of the statistical properties of step-edge fluctuations on the appropriate time-scale.
Cite
@article{arxiv.0704.0624,
title = {Temporal Evolution of Step-Edge Fluctuations Under Electromigration Conditions},
author = {P. J. Rous and T. W. Bole},
journal= {arXiv preprint arXiv:0704.0624},
year = {2009}
}
Comments
7 pages, 5 figures