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Ab initio reaction paths and direct dynamics calculations

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TLDR
In this paper, a detailed study of methods for generating the minimum energy path of a chemical reaction using ab initio electronic structure calculations is presented; the convergence with respect to step size of the geometry and energy along this path is studied with several algorithms.
Abstract
A detailed study of methods for generating the minimum energy path of a chemical reaction using ab initio electronic structure calculations is presented; the convergence with respect to step size of the geometry and energy along this path is studied with several algorithms. The investigations are extended to the calculation of chemical reaction rate coefficients by interfacing the polyrate code for variational transition-state theory and semiclassical tunneling calculations with a locally modified Gaussian 82 electronic structure package that now contains reaction path following capabilities at both the Hartree-Fock and perturbation theory levels. This combined package is used to study the kinetics of the abstraction reaction CH{sub 3} + H{sub 2} {yields} CH{sub 4} + H, which is considered as a prototype organic reaction. They report calculations of reaction rates based on electronic structure theory and generalized transition-state theory, including a multidimensional tunneling correction, without performing an analytic fit to the potential surface. The calculation of dynamical processes directly from ab initio electronic structure input without the intermediary of a potential surface fit is called direct dynamics, and this paper demonstrates the feasibility of this approach for bimolecular reactions.

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General atomic and molecular electronic structure system

TL;DR: A description of the ab initio quantum chemistry package GAMESS, which can be treated with wave functions ranging from the simplest closed‐shell case up to a general MCSCF case, permitting calculations at the necessary level of sophistication.
Journal ArticleDOI

Using Hessian Updating To Increase the Efficiency of a Hessian Based Predictor-Corrector Reaction Path Following Method.

TL;DR: The efficiency of the Hessian based predictor-corrector reaction path following algorithm is greatly enhanced by employing Hessian updating.
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Accurate reaction paths using a Hessian based predictor–corrector integrator

TL;DR: A new integrator for the steepest descent pathway is presented, a Hessian based predictor-corrector algorithm that affords pathways comparable to the previous fourth order method at the cost of a second order approach.
Journal ArticleDOI

Ab Initio Multiple Spawning: Photochemistry from First Principles Quantum Molecular Dynamics

TL;DR: The ab initio multiple spawning (AIMS) method is a time-dependent formulation of quantum chemistry, whereby the nuclear dynamics and electronic structure problems are solved simultaneously as mentioned in this paper. But it does not consider the nonadiabatic effects which are crucial in modeling dynamics on multiple electronic states.
Journal ArticleDOI

Improved algorithms for reaction path following: Higher‐order implicit algorithms

TL;DR: Eight new algorithms for reaction path following are presented, ranging from third order to sixth order, and they rely on the tangent (and in some cases the curvature) at the endpoint of the step to follow the reaction path.
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