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      Explicit Solvation Matters: Performance of QM/MM Solvation Models in Nucleophilic Addition

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          Abstract

          Nucleophilic addition onto a carbonyl moiety is strongly affected by solvent, and correctly simulating this solvent effect is often beyond the capability of single-scale quantum mechanical (QM) models. This work explores multiscale approaches for the description of the reversible and highly solvent-sensitive nucleophilic N|···C=O bond formation in an Me 2N–(CH 2) 3–CH=O molecule. In the first stage of this work, we rigorously compare and test four recent quantum mechanical/molecular mechanical (QM/MM) explicit solvation models, employing a QM description of water molecules in spherical regions around both the oxygen and the nitrogen atom of the solute. The accuracy of the models is benchmarked against a reference QM simulation, focusing on properties of the solvated Me 2N–(CH 2) 3–CH=O molecule in its ring-closed form. In the second stage, we select one of the models (continuous adaptive QM/MM) and use it to obtain a reliable free energy profile for the N|···C bond formation reaction. We find that the dual-sphere approach allows the model to accurately account for solvent reorganization along the entire reaction path. In contrast, a simple microsolvation model cannot adapt to the changing conditions and provides an incorrect description of the reaction process.

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          Generalized Gradient Approximation Made Simple

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              Chemistry with ADF

                Author and article information

                Journal
                J Chem Theory Comput
                J Chem Theory Comput
                ct
                jctcce
                Journal of Chemical Theory and Computation
                American Chemical Society
                1549-9618
                1549-9626
                13 February 2018
                10 April 2018
                : 14
                : 4
                : 1841-1852
                Affiliations
                []Inorganic Chemistry and Catalysis Group, Debye Institute for Nanomaterials Science, Utrecht University , Universiteitsweg 99, 3584 CG Utrecht, The Netherlands
                []Institut de Chimie Moléculaire de l’Université de Bourgogne (ICMUB, UMR-CNRS 6302), Université de Bourgogne Franche-Comté , 9 Avenue Alain Savary, 21078 Dijon Cedex, France
                Author notes
                Article
                10.1021/acs.jctc.7b01206
                6023263
                29438621
                729221f1-108e-4a42-9e59-5b9812954016
                Copyright © 2018 American Chemical Society

                This is an open access article published under an ACS AuthorChoice License, which permits copying and redistribution of the article or any adaptations for non-commercial purposes.

                History
                : 30 November 2017
                Categories
                Article
                Custom metadata
                ct7b01206
                ct-2017-01206c

                Computational chemistry & Modeling
                Computational chemistry & Modeling

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