Activated rate processes: Finite-barrier expansion for the rate in the spatial-diffusion limit

Eli Pollak and Peter Talkner
Phys. Rev. E 47, 922 – Published 1 February 1993
PDFExport Citation

Abstract

A dynamically corrected variational transition-state theory is formulated for the thermally activated escape of a particle trapped in a potential well separated from a different well or continuum by a barrier and coupled to a heat bath. The theory is based on the Hamiltonian-equivalent formulation of the generalized Langevin equation. The dynamical corrections are obtained by utilizing the reactive-flux method in which the choice of dividing surface is guided by minimization of the transition-state flux. Analytic correction formulas, valid for memory friction, are obtained for the Kramers-Grote-Hynes estimate of the rate in the range from moderate friction to the large-friction limit. The analytic expansion is in terms of the inverse barrier height (1/βV). For the special case of an extended Smoluchowski equation containing finite damping corrections, the exact expansion is also obtained using the mean-first-passage-time formulation. The dynamically corrected variational transition-state-theory expansion is shown to be identical to the mean-first-passage-time result.

  • Received 4 May 1992

DOI:https://doi.org/10.1103/PhysRevE.47.922

©1993 American Physical Society

Authors & Affiliations

Eli Pollak and Peter Talkner

  • Chemical Physics Department, Weizmann Institute of Science, Rehovot 76100, Israel

References (Subscription Required)

Click to Expand
Issue

Vol. 47, Iss. 2 — February 1993

Reuse & Permissions
Access Options
Author publication services for translation and copyediting assistance advertisement

Authorization Required


×
×

Images

×

Sign up to receive regular email alerts from Physical Review E

Log In

Cancel
×

Search


Article Lookup

Paste a citation or DOI

Enter a citation
×