Electronic and geometric effects in an Au@NiO core-shell nanocatalyst on the oxidative esterification of aldehydes
Strong metal-support interactions (SMSIs) are important in heterogeneous catalysis to control stability, activity, and selectivity. Core-shell nanostructures as a unique SMSI system not only stabilize the metal nanoparticles in the core, but also offer tunable structural and electronic properties th...
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Veröffentlicht in: | Nanoscale 2025-01, Vol.17 (3), p.1317-1325 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Strong metal-support interactions (SMSIs) are important in heterogeneous catalysis to control stability, activity, and selectivity. Core-shell nanostructures as a unique SMSI system not only stabilize the metal nanoparticles in the core, but also offer tunable structural and electronic properties
their interaction with the support shell. The Au@NiO
core-shell system, for example, is the first commercial nanogold catalyst to produce bulk chemicals
the oxidative esterification of aldehydes. However, how the SMSI effect in Au@NiO
manifests on its oxidative esterification activity is unclear. Here we use a model of an Au
@(NiO)
core-shell nanocatalyst to examine the Au-NiO interaction and the associated electronic and geometric factors in enabling the oxidation of a hemiacetal (an intermediate from a ready reaction between an aldehyde and an alcohol) to an ester. We found 1.27 (e
) electrons flowing from the NiO shell to the Au core, leading to a higher oxide state of Ni atoms and the stabilization of key intermediates on the NiO shell. More importantly, lower activation energy was found on the Au
@(NiO)
catalyst than on the Au(111) and NiO(100) surfaces for the rate-limiting step. Microkinetic modeling confirmed the high activity of the Au
@(NiO)
catalyst in ester production in the experimental temperature range. Our work demonstrates the unique geometric and electronic effects of the Au@NiO
core-shell nanostructure on the catalytic oxidative esterification of aldehydes. |
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ISSN: | 2040-3364 2040-3372 2040-3372 |
DOI: | 10.1039/d4nr03302g |