Ni-catalysed acceptorless dehydrogenative aromatisation of cyclohexanone derivatives enabled by concerted catalysis specific to supported nanoparticles

19 February 2024, Version 1
This content is a preprint and has not undergone peer review at the time of posting.

Abstract

The dehydrogenative aromatisation of cyclohexanone derivatives has had a transformative influence on the synthesis of aromatic compounds because functional groups can be easily introduced at desired positions via classic organic reactions without being limited by ortho-, meta- or para-orientations. However, research is still limited on acceptorless dehydrogenative aromatisation, especially with regard to nonprecious-metal catalysts. Ni is a promising candidate catalyst as a congener of Pd, but thermally Ni-catalysed dehydrogenative aromatisation has not been reported even in an oxidative manner because of the difficulty of β-hydride elimination and the fast re-insertion of Ni–H species. Here, we report a CeO2-supported Ni(0) nanoparticle catalyst for acceptorless dehydrogenative aromatisation of cyclohexanone derivatives. This catalyst is widely applicable to various compounds such as cyclohexanols, cyclohexylamines, N-heterocycles, enamines and N-alkyl piperidones. Through various experiments, we demonstrate that the present reaction was achieved by the concerted catalysis utilizing metal ensembles unique to supported metal nanoparticle catalysts.

Keywords

nickel
acceptorless dehydrogenative aromatization
supported nanoparticle catalyst
concerted catalysis
metal ensembles

Supplementary materials

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Experimental methods, spectral data of products, supplementary figures, supplementary tables, supplementary references, and NMR spectra are described.
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