EventsThe 23rd International Electronic Conference on Synthetic Organic Chemistry
Published
This submission belongs to the session E. Computational Chemistry of the event The 23rd International Electronic Conference on Synthetic Organic Chemistry
Published date
14 Nov, 2019
Citation
Viviana Dorn, Matías Capurso, Rodrigo Gette, Gabriel Radivoy, THE SN2 REACTION: A THEORETICAL-COMPUTATIONAL ANALYSIS OF A SIMPLE AND VERY INTERESTING MECHANISM, in Proceedings of The 23rd International Electronic Conference on Synthetic Organic Chemistry, 15 November–15 December 2019, MDPI: Basel, Switzerland, doi: 10.3390/ecsoc-23-06514
Share
Email
Facebook
Twitter
LinkedIn

THE SN2 REACTION: A THEORETICAL-COMPUTATIONAL ANALYSIS OF A SIMPLE AND VERY INTERESTING MECHANISM

Rodrigo Gette 1
1. Instituto de Química del Sur (INQUISUR-CONICET), Depto. de Química, Universidad Nacional del Sur, Av. Alem 1253, B8000CPB Bahía Blanca, Argentina
Abstract

Bimolecular nucleophilic substitution (SN2) reaction is one of the most frequently process choose as mechanism model to introduce undergraduate chemistry students in the computational chemistry methodology.

In this work, we performed a computational analysis for the ionic SN2 reaction, where the nucleophile charged (X-; X=F, Cl, Br, I) attacks the carbon atom of the substrate (CH3Cl) through a backside pathway and simultaneously the leaving group is displaced (Cl-). The calculations were performed applying DFT methods with the Gaussian09 program, the B3LYP functional, the 6-31+G* basis set for all atom except iodine (6-311G*) and the solvents effect (acetonitrile and cyclohexane) were evaluated with the PCM model. We evaluated the potential energy surface (PES) for the mentioned reaction considering the reactants, the formation of an initial complex between the nucleophile and the substrate, the transition state, a final complex where the leaving group is still bound to the substrate and the products. We analyzed the atomic charge (ESP) and the bond distance throughout the process. Gas phase and solvent studies were performed in order to analyze the solvation effects on the reactivity of the different nucleophiles. We observed that increasing solvent polarity, decreases reaction rates.

On the other hand, we thought it would be enriching, to carry out a reactivity analysis from the point of view of molecular orbitals. So, we analyzed the OM HOMO and the OM LUMO of the different stationary states on PES, both in a vacuum (gas phase) and in acetonitrile as the solvent.

Keywords
SN2 REACTION
DFT
COMPUTATIONAL CHEMISTRY
Manuscript
New magnetic periodic mesoporous organosilica functionalized 3-propyl amine (Fe3O4@PMO-ICS-PrNH2) as highly efficien and recyclable catalysts in one-pot synthesis of imidazopyrimidine derivatives
Synthesis of the 2-tetrazolylmethyl-2,3,4,9-tetrahydro-1H-b-carbolines via ultrasound-assisted one-pot Ugi-azide/Pictet–Spengler process