Related Experiment Video
Updated: Jan 15, 2026

Line Shape Analysis of Dynamic NMR Spectra for Characterizing Coordination Sphere Rearrangements at a Chiral Rhenium Polyhydride Complex
Published on: July 27, 2022
Competition between SN2 and E2 Pathways in CN- + RI/RF Systems: Effects of Reactive Centers, Substitution, and
Xu Liu1, Mingyu Jia1, Shiqi Tian1
1College of Chemistry, Liaoning University, Shenyang 110036, P. R. China.
Abstract:
This study examines how substitution degrees in SN2 reactions using CN- and alkyl halides (RI/RF) are determined through detailed electronic structure calculations. The results reveal that for ambident nucleophile CN-, sp3 hybridized C dominates SN2 pathways at low substitution degrees (α = 1-2), while sp hybridized N demonstrates superior reactivity at high substitution degrees (α = 3). However, E2 pathways consistently favor C as the reactive center, regardless of the substitution degree. For CN- + RI systems, SN2 barriers increase significantly with α-methyl substitution, with activation strain model (ASM) analysis identifying strain energy as the primary influence of barrier heights, showing strong correlation with geometric distortion parameters (%D‡, R2 = 0.81-0.99). Conversely, E2 pathways maintain relatively stable geometric distortion through the concerted cleavage of Cα-I and Hβ-Cβ bonds, resulting in gradually decreasing barriers. Notably, the superior leaving group I leads to lower SN2 transition state barriers than E2 at α = 1-2, attributable to the weak C-I bond and minimal steric hindrance. At α = 3, increased steric bulk stabilizes the E2 pathway, providing an explanation for the experimentally observed significant rate enhancement at α = 3. In contrast, for CN- + RF systems, the barrier difference between E2 and SN2 pathways becomes smaller with increasing substitution degrees. This suggests distinct substitution degree-dependent trends in rate constants between systems containing leaving groups F and I.
Related Concept Videos
SN1 Reaction: Stereochemistry
In the first step of an SN1 reaction, the bond between the electrophilic carbon and the leaving group ionizes to generate the carbocation intermediate. The second step of the mechanism is the nucleophilic attack.
In the formed carbocation, the positively charged carbon is sp2 hybridized with a trigonal planar geometry. As all the three substituents lie on the same plane, a plane of symmetry for the...
SN2 Reaction: Stereochemistry
If the substrate is an achiral molecule at the α-carbon, the inversion of configuration is not...
SN2 Reaction: Transition State
When the nucleophile approaches the electrophilic carbon with its lone pairs, the halide acts as a leaving group and moves away with the electron-pair bonded to the carbon. Dotted partial bonds represent the bonds being formed or broken...
Nucleophilic Aromatic Substitution: Addition–Elimination (SNAr)
The reaction begins with an attack of the nucleophile on the carbon that holds the leaving group. This results in the delocalization of the π electrons over the ring carbons. The resonance interaction between...
E2 Reaction: Kinetics and Mechanism
Predicting Products: SN1 vs. SN2
With increased substitution on the alkyl halide,...

