Zhewei Li, Yanhui Tang, Ming Lei
The γ-C(sp 3 )–H functionalization of carboxylic acids in the presence of β-C(sp 3 )–H bonds is a tremendous challenge due to the overwhelming formation of five-membered metallacycles over six-membered ones. In this study, the reaction mechanism of the Pd-catalyzed γ-methylene C(sp 3 )–H (hetero)arylation of cycloalkane carboxylic acids was investigated using the density functional theory method and the nature of the counter-cation effect was unveiled. Different from the previously proposed six-membered palladacyclic intermediate formed by the γ-C(sp 3 )–H activation, the calculated results indicate that in this reaction, the β-C(sp 3 )–H bond will be favorably activated at first to form a five-membered palladacyclic intermediate instead of the γ-C(sp 3 )–H bond and that the achieved β,γ-unsaturated acid after the β- and γ-C(sp 3 )–H activation is a key feasible transient intermediate for the following γ-C(sp 3 )–H arylation. The γ-arylation product is obtained by the C–C coupling of β,γ-unsaturated acid with aryl iodide, which could be realized by the Pd–Ag catalytic model via a Pd(0)/Pd(II) mechanism instead of the Pd–Ag–Cs catalytic model via a Pd(II)/Pd(IV) mechanism. The reaction mechanism not only reveals the origin of this reactivity but also successfully explains the experimental phenomenon that the reaction is insensitive to bases, which is significantly different from the previous reports on the β-C(sp 3 )–H and γ-C(sp 3 )–H arylation of carboxylic acids.