Reaction-diffusion with stochastic decay rates
arXiv:1603.04753 · doi:10.1039/C7CP02971C
Abstract
Understanding anomalous transport and reaction kinetics due to microscopic physical and chemical disorder is a long-standing goal in many fields including geophysics, biology, and engineering. We consider reaction-diffusion characterized by fluctuations in both transitions times and decay rates. We introduce and analyze a model framework that explicitly connects microscopic fluctuations with the mescoscopic description. For broad distributions of transport and reaction time scales we compute the particle density and derive the equations governing its evolution, finding power-law decay of the survival probability, and spatially heterogeneous decay that leads to subdiffusion and an asymptotically stationary surviving-particle density. These anomalies are clearly attributable to non-Markovian effects that couple transport and chemical properties in both reaction and diffusion terms.
Explain model and applications in more detail. 19 pages, 6 figures
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- Landau theory of restart transitions
- Non-renewal resetting of scaled Brownian motion
- Diffusion with stochastic resetting is invariant to return speed
- Invariants of motion with stochastic resetting and space-time coupled returns
- Chemical continuous time random walks
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- Mitigating long transient time in deterministic systems by resetting
- Mean-performance of Sharp Restart II: Inequality Roadmap
- Tail-behavior roadmap for sharp restart