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September 18, 2025Angewandte Chemie International Edition2 citations

Spillover Hydrogen Boosts Nitroarene Hydrogenation to Industrial Activity with Ppm‐Level Platinum Single Atoms

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NWNai‐Liang WangTLTianxiao LiXWXin Wang

Key Points

  • This research shows a 25.7-fold increase in turnover frequency due to spillover hydrogen from a carbon-coated nickel support.
  • Turnover frequency reached 44.1 s−1, achieving space-time yield comparable to traditional platinum catalysts at 1 wt.% loading.
  • Density functional theory calculations indicate spillover hydrogen lowers the hydrogenation energy barrier significantly.
  • The density of adsorbed spillover hydrogen acts as a descriptor for the efficacy and direction of hydrogenation in single-atom catalysts.

Abstract

Abstract The application of noble single‐atom catalysts (SACs) at trace loadings is constrained by a low space‐time yield, presenting a formidable challenge in elevating the activity of SACs to be comparable to industrial catalysts in nitroarene hydrogenation. In this study, the spillover hydrogen from a carbon‐coated nickel support (Ni@C) coupled with 300 ppm platinum results in a 25.7‐fold enhancement in turnover frequency (TOF, 44.1 s −1 ), thereby achieving a space‐time yield equivalent to 1 wt.% Pd/C industrial hydrogenation catalyst. Remarkably, the Pt 1 /Ni@C catalyst preserves excellent stability under rigorous conditions, including acidic, basic, and oxidative environments. Density functional theory (DFT) calculations reveal that spillover hydrogen effectively reduces the hydrogenation energy barrier, with the energy barrier height inversely correlated to the density of adsorbed spillover hydrogen on Pt single atom. Extrapolating the enhanced hydrogenation effect to other SACs and nitroarene substrates shows that spillover hydrogen can either promote or inhibit hydrogenation processes. The density of adsorbed spillover hydrogen serves as a predictive descriptor for discerning the direction of the synergistic effect in single‐atom catalyzed hydrogenation. This study provides insightful guidance for the rational design of more efficient and industrially viable SACs exploiting hydrogen spillover.

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Cite This Study

Wang et al. (2025) studied this question.

synapsesocial.com/papers/68d462d231b076d99fa6240ahttps://doi.org/10.1002/anie.202514332
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