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A Unified Framework for Understanding Nucleophilicity and Protophilicity in the S

Authors :
Pascal, Vermeeren
Thomas, Hansen
Paul, Jansen
Marcel, Swart
Trevor A, Hamlin
F Matthias, Bickelhaupt
Source :
Chemistry (Weinheim an Der Bergstrasse, Germany)
Publication Year :
2020

Abstract

The concepts of nucleophilicity and protophilicity are fundamental and ubiquitous in chemistry. A case in point is bimolecular nucleophilic substitution (SN2) and base‐induced elimination (E2). A Lewis base acting as a strong nucleophile is needed for SN2 reactions, whereas a Lewis base acting as a strong protophile (i.e., base) is required for E2 reactions. A complicating factor is, however, the fact that a good nucleophile is often a strong protophile. Nevertheless, a sound, physical model that explains, in a transparent manner, when an electron‐rich Lewis base acts as a protophile or a nucleophile, which is not just phenomenological, is currently lacking in the literature. To address this fundamental question, the potential energy surfaces of the SN2 and E2 reactions of X−+C2H5Y model systems with X, Y = F, Cl, Br, I, and At, are explored by using relativistic density functional theory at ZORA‐OLYP/TZ2P. These explorations have yielded a consistent overview of reactivity trends over a wide range in reactivity and pathways. Activation strain analyses of these reactions reveal the factors that determine the shape of the potential energy surfaces and hence govern the propensity of the Lewis base to act as a nucleophile or protophile. The concepts of “characteristic distortivity” and “transition state acidity” of a reaction are introduced, which have the potential to enable chemists to better understand and design reactions for synthesis.<br />It's about time! A transparent and physically sound model is proposed to recognize when a Lewis base will react as a nucleophile (SN2) or protophile (E2) and the novel concepts of “characteristic distortivity” and “transition state acidity” are introduced.

Details

ISSN :
15213765
Volume :
26
Issue :
67
Database :
OpenAIRE
Journal :
Chemistry (Weinheim an der Bergstrasse, Germany)
Accession number :
edsair.pmid..........b8a72b3237f23e5ebc0ee4d221ec17f1