Computational and Experimental Studies on Dual Bridged Bimetallic Catalyst Enabled by the Synergistic Effect of Lewis Acid and eg Orbital Interaction

22 June 2022, Version 1
This content is a preprint and has not undergone peer review at the time of posting.

Abstract

Unravelling the catalytic reaction mechanism is a long-term challenge for developing efficient catalysts. Recently, the blooming bimetallic catalyst have enabled to activate inert bonds and realize complex C-C formations. However, lack of catalytic mechanism and uncertain active catalyst led to hard efforts of trial and error. Herein, we theoretically discover a dual bridged Ni-Al hetero-bimetallic species that firstly verified by NMR experiments. This complex can be an active catalyst not only for nickel-catalyzed asymmetric cycloaddition via C-C activation, but also for more catalytic C-C formations through C-H activation. And an unprecedented tandem redox dehydrogenation mechanism was revealed to play an important role for the formation of active species. In contrast to the well-accepted mono-phosphinito complex, the advance of dual-complex relies on the synergistic effect of Lewis acid and eg orbital interaction with d_(z^2 ) orbital reoccupation and d_(x^2-y^2 ) orbital recombination, displaying the redox properties for accelerating both metal-H reductive dehydrogenation and C-C reductive elimination.

Keywords

DFT mechanism study
Ni-Al bimetallic catalysis
secondary phosphine oxides
eg orbital interaction
lewis acid interaction

Supplementary materials

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Description
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Title
SI
Description
The SI includes the computational methods, benchmark of density functionals, NMR Experiments, supplementary interpretation to the manuscript calculation results and necessary molecular Coordinates.
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