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Intrinsic reaction coordinate: Calculation, bifurcation, and automated search

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TLDR
The intrinsic reaction coordinate (IRC) approach has been used extensively in quantum chemical analysis and prediction of the mechanism of chemical reactions as mentioned in this paper, which gives a unique connection from a given transition structure to local minima of the reactant and product sides.
Abstract
The intrinsic reaction coordinate (IRC) approach has been used extensively in quantum chemical analysis and prediction of the mechanism of chemical reactions. The IRC gives a unique connection from a given transition structure to local minima of the reactant and product sides. This allows for easy understanding of complicated multistep mechanisms as a set of simple elementary reaction steps. In this article, three topics concerning the IRC approach are discussed. In the first topic, the first ab initio study of the IRC and a recent development of an IRC calculation algorithm for enzyme reactions are introduced. In the second topic, cases are presented in which dynamical trajectories bifurcate and corresponding IRC connections can be inaccurate. In the third topic, a recent development of an automated reaction path search method and its application to systematic construction of IRC networks are described. Finally, combining these three topics, future perspectives are discussed. © 2014 Wiley Periodicals, Inc.

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Photodissociation Dynamics of CO-Forming Channels on the Ground-State Surface of Methyl Formate at 248 nm: Direct Dynamics Study and Assessment of Generalized Multicenter Impulsive Models.

TL;DR: In this paper, the photodissociation dynamics of methyl formate in the electronic ground state S0, initiated by a 248 nm-wavelength laser, was studied by direct dynamics simulations.
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Effects of electrostatic drag on the velocity of hydrogen migration ─ pre- and post-transition state enthalpy/entropy compensation

TL;DR: The results indicate that stronger electrostatic interactions between the migrating hydrogen and nearby π-systems lead to slower hydrogen migration, an effect tied to entropic contributions from the hydrogen + neighboring group substructures.
Journal ArticleDOI

The potential energy profile of the decomposition of 1,1-diamino-2,2-dinitroethylene (FOX-7) in the gas phase.

TL;DR: In this article , the full decomposition pathway of 1,1-Diamino-2,2-dinitroethene (FOX-7) was investigated using reflectron time-of-flight mass spectrometry and infrared spectroscopy.
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Thermal decomposition of N-butyl-N-methyl pyrrolidinium tetrafluoroborate and N-butyl-N-methyl pyrrolidinium hexafluorophosphate: Py-GC–MS and DFT study

TL;DR: The thermal stability and decomposition mechanisms of pyrrolidinium-based ionic liquids (ILs) have been investigated using pyrolysis-GC-MS (Py-GC -MS) and B3LYP/6-311++G(d,p) level of density functional theory (DFT).
References
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Book

An introduction to the bootstrap

TL;DR: This article presents bootstrap methods for estimation, using simple arguments, with Minitab macros for implementing these methods, as well as some examples of how these methods could be used for estimation purposes.
Journal ArticleDOI

A climbing image nudged elastic band method for finding saddle points and minimum energy paths

TL;DR: In this article, a modification of the nudged elastic band method for finding minimum energy paths is presented, where one of the images is made to climb up along the elastic band to converge rigorously on the highest saddle point.
Journal ArticleDOI

An Introduction to the Bootstrap

Scott D. Grimshaw
- 01 Aug 1995 - 
TL;DR: Statistical theory attacks the problem from both ends as discussed by the authors, and provides optimal methods for finding a real signal in a noisy background, and also provides strict checks against the overinterpretation of random patterns.
Journal ArticleDOI

An improved algorithm for reaction path following

TL;DR: In this article, a second order algorithm for finding points on a steepest descent path from the transition state of the reactants and products is presented. But the points are optimized so that the segment of the reaction path between any two adjacent points is given by an arc of a circle, and the gradient at each point is tangent to the path.
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