Pt Single Atoms Embedded in the Ni2P Nanocrystal Surfaces as Highly Active Catalysts for Hydrogenation of Nitriles to Primary Amines

Abstract

The construction of well-defined heteroatomic pait-site catalysts with high performance holds significant implications for elucidating catalytic reaction mechanisms and developing advanced industrial catalysts. Herein, we report a highly active and selective nitrile hydrogenation catalyst by embedding Pt single atoms in the surface of Ni2P nanocrystals (denoted as Pt1-Ni2P/SiO2-VP), thereby creating Pt1-Niδ+ pair sites. In the hydrogenation of benzonitrile, Pt1-Ni2P/SiO2-VP exhibited substantially enhanced catalytic activity compared to its single-component counterparts.By integrating catalytic and kinetic studies, we demonstrated that alkaline etching generates P vacancies on the Ni2P surface, enabling precise anchoring of Pt atoms to form the Pt1-Niδ+ pairsite configuration. During catalysis, the Pt1 site acted as the active center for H2 activation, and the synergistic effect of Pt1-Niδ+ pair sites led to significantly higher activity in nitrile hydrogenation reactions than the Ni2P/SiO2 catalyst, which contains only Niδ+ site. This work provides a rational design strategy for pair-site catalysts, with potential applicability to a broader range of catalytic systems.

Supplementary files

Article information

Article type
Paper
Submitted
22 Mar 2026
Accepted
26 May 2026
First published
29 May 2026

Catal. Sci. Technol., 2026, Accepted Manuscript

Pt Single Atoms Embedded in the Ni2P Nanocrystal Surfaces as Highly Active Catalysts for Hydrogenation of Nitriles to Primary Amines

D. Liu, M. Huai, C. Si, X. Lan and T. Wang, Catal. Sci. Technol., 2026, Accepted Manuscript , DOI: 10.1039/D6CY00357E

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