Directed particle diffusion under “burnt bridges” conditions
- 11 June 2001
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review E
- Vol. 64 (1), 011102
- https://doi.org/10.1103/physreve.64.011102
Abstract
We study random walks on a one-dimensional lattice that contains weak connections, so-called “bridges.” Each time the walker crosses the bridge from the left or attempts to cross it from the right, the bridge may be destroyed with probability p; this restricts the particle’s motion and directs it. Our model, which incorporates asymmetric aspects in an otherwise symmetric hopping mechanism, is very akin to “Brownian ratchets” and to front propagation in autocatalytic reactions. The analysis of the model and Monte Carlo simulations show that for large p the velocity of the directed motion is extremely sensitive to the distribution of bridges, whereas for small p the velocity can be understood based on a mean-field analysis. The single-particle model advanced by us here allows an almost quantitative understanding of the front’s position in the many-particle reaction.
Keywords
This publication has 31 references indexed in Scilit:
- Front propagation in one-dimensional autocatalytic reactions: The breakdown of the classical picture at small particle concentrationsPhysical Review E, 2000
- Front propagation in the one-dimensional autocatalyticA+B→2Areaction with decayPhysical Review E, 1999
- Front propagation: Precursors, cutoffs, and structural stabilityPhysical Review E, 1998
- Microscopic simulation of a wave front: Chemically induced perturbation of particle velocity distributionEurophysics Letters, 1998
- Modeling molecular motorsReviews of Modern Physics, 1997
- Rectification by hopping motion through nonsymmetric potentials with strong biasPhysical Review E, 1997
- Non-equilibrium directed diffusion and inherently irreversible heat enginesJournal of Physics A: General Physics, 1997
- Fluctuations and correlations in a diffusion-reaction system: Exact hydrodynamicsJournal of Statistical Physics, 1991
- Segregation in annihilation reactions without diffusion: Analysis of correlationsPhysical Review Letters, 1989
- Directed and diode percolationPhysical Review B, 1982