Tuning the Hydrogenation Selectivity of an Unsaturated Aldehyde via Single-Atom Alloy Catalysts.
J Am Chem Soc
; 146(4): 2556-2567, 2024 Jan 31.
Article
en En
| MEDLINE
| ID: mdl-38252846
ABSTRACT
Selective hydrogenation of α,ß-unsaturated aldehydes to produce unsaturated alcohols remains a challenge in catalysis. Here, we explore, on the basis of first-principles simulations, single-atom alloy (SAA) catalysts on copper as a class of catalytic materials to enhance the selectivity for CâO bond hydrogenation in unsaturated aldehydes by controlling the binding strength of the CâC and CâO bonds. We show that on SAA of early transition metals such as Ti, Zr, and Hf, the CâO binding mode of acrolein is favored but the strong binding renders subsequent hydrogenation and desorption impossible. On SAA of late-transition metals, on the other hand, the CâC binding mode is favored and CâC bond hydrogenation follows, resulting in the production of undesired saturated aldehydes. Mid-transition metals (Cr and Mn) in Cu(111) appear as the optimal systems, since they favor acrolein adsorption via the CâO bond but with a moderate binding strength, compatible with catalysis. Additionally, acrolein migration from the CâO to the CâC binding mode, which would open the low energy path for CâC bond hydrogenation, is prevented by a large barrier for this process. SAA of Cr in Cu appears as an optimal candidate, and kinetic simulations show that the selectivity for propenol formation is controlled by preventing the acrolein migration from the more stable CâO to the less stable CâC binding mode and subsequent H-migration and by the formation of the O-H bond from the monohydrogenated intermediate. Dilute alloy catalysts therefore enable tuning the binding strength of intermediates and transition states, opening control of catalytic activity and selectivity.
Texto completo:
1
Banco de datos:
MEDLINE
Idioma:
En
Revista:
J Am Chem Soc
Año:
2024
Tipo del documento:
Article
País de afiliación:
Estados Unidos