Unlocking synergy in bimetallic catalysts by core–shell design

Publication date

2021-09

Authors

van der Hoeven, JessiISNI 0000000493299290
Jelic, Jelena
Olthof, Liselotte A.
Totarella, GiorgioISNI 0000000507450175
Van Dijk-Moes, Relinde J.A.ISNI 0000000492914749
Krafft, Jean Marc
Louis, Catherine
Studt, Felix
van Blaaderen, AlfonsISNI 0000000388251965
de Jongh, PetraISNI 0000000395610073

Editors

Advisors

Supervisors

Document Type

Article
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License

taverne

Abstract

Extending the toolbox from mono- to bimetallic catalysts is key in realizing efficient chemical processes1. Traditionally, the performance of bimetallic catalysts featuring one active and one selective metal is optimized by varying the metal composition1–3, often resulting in a compromise between the catalytic properties of the two metals4–6. Here we show that by designing the atomic distribution of bimetallic Au–Pd nanocatalysts, we obtain a synergistic catalytic performance in the industrially relevant selective hydrogenation of butadiene. Our single-crystalline Au-core Pd-shell nanorods were up to 50 times more active than their alloyed and monometallic counterparts, while retaining high selectivity. We find a shell-thickness-dependent catalytic activity, indicating that not only the nature of the surface but also several subsurface layers play a crucial role in the catalytic performance, and rationalize this finding using density functional theory calculations. Our results open up an alternative avenue for the structural design of bimetallic catalysts.

Keywords

Taverne, General Chemistry, General Materials Science, Condensed Matter Physics, Mechanics of Materials, Mechanical Engineering

Citation

van der Hoeven, J E S, Jelic, J, Olthof, L A, Totarella, G, van Dijk-Moes, R J A, Krafft, J M, Louis, C, Studt, F, van Blaaderen, A & de Jongh, P E 2021, 'Unlocking synergy in bimetallic catalysts by core–shell design', Nature Materials, vol. 20, no. 9, pp. 1216-1220. https://doi.org/10.1038/s41563-021-00996-3