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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

Transition state theory for photoisomerization rates of trans‐stilbene in the gas and liquid phases

TL;DR: In this paper, a model based on a generalized Langevin equation is proposed and solved using transition state theory, which is based on the unification of two different approaches to the description of a dissipative harmonic bath.
Journal ArticleDOI

Effects of Solvent Fluctuations on the Rate of Thermal Z/E Isomerization of Azobenzenes and N-Benzylideneanilines

TL;DR: In this article, the effects of pressure on thermal Z/E isomerization of substituted N-benzylideneanilines and azobenzenes were studied in 2-methyl-2,4-pentanediol.
Journal ArticleDOI

Generalization of the escape rate from a metastable state driven by external cross-correlated noise processes.

TL;DR: The generalized escape rate from a metastable state in the moderate-to-large damping limit is derived and it is shown that by increasing the degree of external noise correlation one can enhance the escape rate through the dressed effective noise strength.
Journal ArticleDOI

Stochastic Dynamics in Irreversible Nonequilibrium Environments. 2. A Model for Thermosetting Polymerization

TL;DR: The irreversible generalized Langevin equation (iGLE) as mentioned in this paper was proposed to describe non-stationary environments in which the nonstationarity is induced by the macroscopic behavior of the ensemble itself, rather than an external force.
Journal ArticleDOI

Internal motion of an electronically excited molecule in viscoelastic media

TL;DR: It was observed that the internal motion of electronically excited 4-DASPI correlates strongly with dynamic viscosity and elastic modulus, and showed that condensed phase dynamics of 4- DASPI are governed by the explicit mode coupling between the rotamerizing coordinate and mechanical properties of viscoelastic media.
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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