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Journal ArticleDOI

The stable states picture of chemical reactions. II. Rate constants for condensed and gas phase reaction models

Richard F. Grote, +1 more
- 15 Sep 1980 - 
- Vol. 73, Iss: 6, pp 2715-2732
TLDR
In this paper, the stable states picture (SSP) was used to derive the time correlation function (tcf) for the rate constant κ for a wide variety of gas and solution phase reaction models.
Abstract
The time correlation function (tcf) formulas for rate constants κ derived via the stable states picture (SSP) of chemical reactions are applied to a wide variety (a–d) of gas and solution phase reactionmodels. (a) For gas phase bimolecular reactions, we show that the flux tcf governing κ corresponds to standard numerical trajectory calculation methods. Alternate formulas for κ are derived which focus on saddle point surfaces, thus increasing computational efficiency. Advantages of the SSP formulas for κ are discussed. (b) For gas phase unimolecular reactions, simple results for κ are found in both the strong and weak coupling collision limits; the often ignored role of product stabilization is exposed for reversible isomerizations. The SSP results correct some standard weak coupling rate constant results by as much as 50%. (c) For barrier crossing reactions in solution, we evaluate κ for a generalized (non‐Markovian) Langevin description of the dynamics. For several realistic models of time dependent friction, κ differs dramatically from the popular Kramers constant friction predictions; this has important implications for the validity of transition state theory. (d) For solutionreactions heavily influenced by spatial diffusion, we show that the SSP isolates short range reaction dynamics of interest and includes important barrier region effects in structural isomerizations often missed in standard descriptions.

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Citations
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Journal ArticleDOI

Microcanonical variational transition-state theory for reaction rates in dissipative systems

TL;DR: It is shown that even in what is usually thought of as the spatial diffusion limit the reactive flux can involve an energy diffusion term due to energy transfer from the dissipative media, in addition to the standard spatial diffusion term.
Journal ArticleDOI

Thermally activated escape processes in a double well coupled to a slow harmonic mode

TL;DR: In this paper, a symmetric double well system coupled to a dissipative harmonic mode is treated by solving the time-independent two-dimensional Smoluchowski equation as a function of a coupling and a diffusion anisotropy parameter.
Journal ArticleDOI

Barrierless Isomerization Dynamics in Viscous Liquids: Decoupling of the Reaction Rate from the Slow Frictional Forces

TL;DR: In this article, a non-Markovian Smoluchowski equation with a time (t) dependent diffusion coefficient was proposed to describe the reactive motion along the reaction surface; the reaction itself was described by a coordinate-dependent sink term.
Journal ArticleDOI

Multiplicative cross-correlated noise induced escape rate from a metastable state

TL;DR: It is evident both from analytical development and the corresponding numerical simulation that the enhancement of rate is possible by increasing the degree of correlation of the external fluctuations.
Journal ArticleDOI

Cattaneo-type subdiffusion-reaction equation.

TL;DR: This work will derive the Cattaneo-type subdiffusion-reaction equation in the case in which mobile particles of species A and B can chemically react according to a more complicated rule and find its solution over a long time limit.
References
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Journal ArticleDOI

Brownian motion in a field of force and the diffusion model of chemical reactions

TL;DR: In this article, a particle which is caught in a potential hole and which, through the shuttling action of Brownian motion, can escape over a potential barrier yields a suitable model for elucidating the applicability of the transition state method for calculating the rate of chemical reactions.
Book

Theory of Unimolecular Reactions

W. Forst, +1 more
BookDOI

Dynamics of Molecular Collisions

TL;DR: In this paper, the potential energy surfaces and their effect on collision processes are discussed. But the authors focus on the nonadiabatic processes in collision theory and not on the classical trajectories of trajectories.
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