Enhanced Catalytic Activity of Nickel Complexes of an Adaptive Diphosphine–Benzophenone Ligand in Alkyne Cyclotrimerization
Author(s) -
Alessio F. Orsino,
Manuel Gutiérrez del Campo,
Martin Lutz,
MarcEtienne Moret
Publication year - 2019
Publication title -
acs catalysis
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 4.898
H-Index - 198
ISSN - 2155-5435
DOI - 10.1021/acscatal.8b05025
Subject(s) - benzophenone , catalysis , chemistry , alkyne , moiety , nickel , ligand (biochemistry) , imine , ketone , combinatorial chemistry , phosphine , selectivity , homogeneous catalysis , photochemistry , stereochemistry , organic chemistry , biochemistry , receptor
Adaptive ligands, which can adapt their coordination mode to the electronic structure of various catalytic intermediates, offer the potential to develop improved homogeneous catalysts in terms of activity and selectivity. 2,2'-Diphosphinobenzophenones have previously been shown to act as adaptive ligands, the central ketone moiety preferentially coordinating reduced metal centers. Herein, the utility of this scaffold in nickel-catalyzed alkyne cyclotrimerization is investigated. The complex [( p -tol L1 )Ni(BPI)] ( p -tol L1 = 2,2'-bis(di( para -tolyl)phosphino)-benzophenone; BPI = benzophenone imine) is an active catalyst in the [2 + 2 + 2] cyclotrimerization of terminal alkynes, selectively affording 1,2,4-substituted benzenes from terminal alkynes. In particular, this catalyst outperforms closely related bi- and tridentate phosphine-based Ni catalysts. This suggests a reaction pathway involving a hemilabile interaction of the C=O unit with the nickel center. This is further borne out by a comparative study of the observed resting states and DFT calculations.
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