Finite-time fluctuation theorem for diffusion-influenced surface reactions on spherical and Janus catalytic particles
arXiv:1807.06553 · doi:10.1088/1742-5468/aaeda1
Abstract
A finite-time fluctuation theorem for the diffusion-influenced surface reaction A <=> B is investigated for spherical and Janus catalytic particles. The finite-time rates and thermodynamic force are analytically calculated by solving diffusion equations with the special boundary conditions of the finite-time fluctuation theorem. Theory is compared with numerical simulations carried out with two different methods: a random walk algorithm and multiparticle collision dynamics.
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Cited by in corpus (4)
- Thermodynamics and statistical mechanics of chemically-powered synthetic nanomotors
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- Counting statistics and microreversibility in stochastic models of transistors