COMMUNICATION
Analysis of key steps in the catalytic cross-coupling of alkyl
electrophiles under Negishi-like conditions{
Gavin D. Jones, Chris McFarland, Thomas J. Anderson and David A. Vicic*
Received (in Berkeley, CA, USA) 8th April 2005, Accepted 24th June 2005
First published as an Advance Article on the web 22nd July 2005
DOI: 10.1039/b504996b
…
Ni Ni interactions (Fig. 1, left). Electrochemical analysis of
The use of tpy9 (tpy9 5 4,49,40-tri-tert-butyl-terpyridine) as a
ligand for nickel allows for the isolation of a Ni(I)–alkyl
complex and a Ni(II)–alkyl halide complex, both of which can
be used as mechanistic probes of key steps in alkyl cross-
coupling reactions.
the Ni(I)–alkyl complexes reveals that 1b (E 5 21.44 V, vs.
Ag/Ag+ in THF solution) is also slightly more reducing than 1a
(E 5 21.32 V).
Surprisingly, the steric and electronic properties afforded by the
t-butyl groups, which are far removed from the metal center, were
found to make a big difference in reactivity towards alkyl halides.
While reaction of Ni(COD)2 with tpy and methyl iodide led to
precipitation of (tpy)NiI from THF in nearly quantitative yield in
4 h,7 reaction with tpy9 takes 24 h to convert to the analogous
green iodo-compound 3 (eqn. (2)). Stopping the reaction at earlier
reaction times permitted isolation of a new red compound, which
was determined by X-ray crystallography to be the Ni(II)–alkyl
halide complex 2a (eqn. (2)). To our knowledge, this is only the
second instance where both a s-bonded C(alkyl) complex of Ni(I)
and its one-electron oxidation counterpart have been structurally
characterized.13 Remarkably, both 1b and 2a are relatively stable
at room temperature despite the fact that the axial sites are
sterically accessible. A procedure for preparing [(tpy9)NiMe]PF6
(2b) has also been developed (see Supporting Information{) to
explore the role of counter-ions in cross-coupling reactions.
The catalytic cross-coupling of alkyl groups has historically been a
difficult reaction to catalyze due to the presence of reactive
b-hydrogens in both the alkyl electrophiles and the alkyl
nucleophiles.1–4 Nickel mediated Negishi-like reactions, in which
an alkyl halide is coupled with an alkylzinc halide, have been
among the more successful methods recently developed that,
depending on the ligand employed, are amenable to substrates
containing b-hydrogens.5–11 We recently showed that nickel
complexes containing the terpyridyl (tpy) ligand are capable of
catalyzing such alkyl cross-coupling reactions.7 We now report a
ligand modification which unexpectedly permitted the isolation of
key plausible intermediates of a catalytic cycle, and determine the
viability of each of these intermediates in alkane product
formation.
(1)
ð2Þ
Ni(I)–methyl complexes containing the terpyridyl ligand archi-
tectures are synthesized according to the general procedure
described in eqn. (1). Isotope studies show that upon addition of
terpyridyl ligand, ethane is released via a non-radical pathway.12
Substitution of tpy with tpy9 (tpy9 5 4,49,40-tri-tert-butyl-
terpyridine) was found to make a number of interesting differences
in the electronic and solid-state structures of the Ni(I)–alkyl
complexes and in the general reactivity of the nickel complexes
towards alkyl halides (see below). When the reaction in eqn. (1) is
performed in ether solvent, both 1a and 1b can be isolated in
analytically pure form by mere filtration. Unlike 1a, which packs
The partial packing diagram of the cationic core-unit of 2a is
shown in Fig. 1. Perhaps the most unusual feature of the solid-
…
˚
state structure of 2a is the short Ni Ni contacts of 3.32 A, which
requires that the t-butyl groups of two independent molecules lie in
close proximity to one another.
Importantly, the isolation of the stable Ni(I)–alkyl complex 1b
and the Ni(II)–alkyl halide complex 2a permitted a unique
opportunity to study the possible involvement of both species in
the catalytic cross-coupling of alkyl electrophiles and nucleophiles
under Negishi-like conditions. Addition of 2a to a five-fold excess
of heptylzinc bromide in THF led to cross-coupled product in only
8% yield (eqn. (3)), indicating that product formation under catalytic
…
as head-to-head dimers in the solid-state with a short Ni Ni
7
separation of 3.18 A, 1b favors a head-to-tail stacking arrange-
˚
conditions is not likely to be proceeding though a simple
˚
ment with a much larger intermolecular spacing of 3.72 A and no
transmetallation of a Ni(II)–alkyl halide complex by an alkylzinc
bromide reagent. The only other observed organic product for
eqn. (3) was tetradecane (30%). The low yields of cross-coupled
product do not appear to be due to iodide inhibition, as repeating
the reaction described in eqn. (3) with complex 2b as the nickel
source did not produce octane in yields greater than 5%. High
yields of cross-coupled product were attainable, however, when a
Department of Chemistry and Biochemistry, University of Arkansas,
Fayetteville, AR 72701, USA. E-mail: dvicic@uark.edu;
Fax: +1 479 575 4049; Tel: +1 479 575 5078
{ Electronic supplementary information (ESI) available: general experi-
mental methods, X-ray, magnetic, and electrochemical data. See http://
dx.doi.org/10.1039/b504996b
This journal is ß The Royal Society of Chemistry 2005
Chem. Commun., 2005, 4211–4213 | 4211