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Controllable Deposition of Bi onto Pd for Selective Hydrogenation of Acetylene.

Hongquan KangJianzhou WuBaohui LouYue WangYilin ZhaoJuanjuan LiuShihui ZouJie Fan
Published in: Molecules (Basel, Switzerland) (2023)
The rational regulation of catalyst active sites at atomic scale is a key approach to unveil the relationship between structure and catalytic performance. Herein, we reported a strategy for the controllable deposition of Bi on Pd nanocubes (Pd NCs) in the priority order from corners to edges and then to facets (Pd NCs@Bi). The spherical aberration-corrected scanning transmission electron microscopy (ac-STEM) results indicated that Bi 2 O 3 with an amorphous structure covers the specific sites of Pd NCs. When only the corners and edges of the Pd NCs were covered, the supported Pd NCs@Bi catalyst exhibited an optimal trade-off between high conversion and selectivity in the hydrogenation of acetylene to ethylene under ethylene-rich conditions (99.7% C 2 H 2 conversion and 94.3% C 2 H 4 selectivity at 170 °C) with remarkable long-term stability. According to the H 2 -TPR and C 2 H 4 -TPD measurements, the moderate hydrogen dissociation and the weak ethylene adsorption are responsible for this excellent catalytic performance. Following these results, the selectively Bi-deposited Pd nanoparticle catalysts showed incredible acetylene hydrogenation performance, which provides a feasible perspective to design and develop highly selective hydrogenation catalysts for industrial applications.
Keyphrases
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