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March 31, 2026ACS Nano2 citations

Tailoring Cu + /Cu 0 Ratios of Copper-Based Electrocatalysts for Benzonitrile-to-Benzylamine Transformation

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YJYe JiangYLYunxia LiuCSChenkun Su

Key Points

  • The study aims to optimize the Cu+/Cu0 ratios in copper electrocatalysts for efficient benzonitrile to benzylamine transformation.
  • Constructed Cu2O/Cu nanowire array electrocatalysts with dual-active sites.
  • Modulated Cu+/Cu0 ratios by adjusting electroreduction potentials.
  • Investigated the mechanistic roles of Cu+ and Cu0 in the catalytic process.
  • Cu2O/Cu-NA with a Cu+/Cu0 ratio of 0.98 achieved 99.8% benzonitrile conversion.
  • Benzylamine selectivity reached 98.7% with a Faradaic efficiency of 98.8% at -0.37 V vs RHE.
  • Demonstrated the importance of the Cu2O/Cu interface for efficient catalysis.

Abstract

Catalytic electroreduction of benzonitrile offers a promising sustainable alternative to thermocatalytic approaches for benzylamine synthesis under mild conditions. Inspired by a decoupling strategy, herein, we rationally constructed dual-active sites of Cu+ and Cu0 within Cu2O/Cu nanowire array (Cu2O/Cu-NA) electrocatalysts for water and benzonitrile activation, respectively. This design enabled exceptional catalytic performance for benzonitrile-to-benzylamine electroreduction. Precise control of the electroreduction potentials of CuO nanowire array for the synthesis of Cu2O/Cu-NA allowed the modulation of Cu+/Cu0 ratios. A volcano-shaped correlation was observed between the electrocatalytic activity of Cu2O/Cu-NA and Cu+/Cu0 ratios. Experimentally, the Cu2O/Cu-NA with a Cu+/Cu0 ratio of 0.98 delivered the optimal catalytic performance with a benzonitrile conversion of 99.8%, a benzylamine selectivity of 98.7% and a Faradaic efficiency of 98.8% at -0.37 V vs. RHE. Comprehensive mechanistic investigations demonstrate the distinct roles of Cu+ in generating *H through water activation and Cu0 in activating/reducing benzonitrile. The intimate Cu2O/Cu interface facilitates kinetic matching between the *H generation and nitrile reduction, leading to selective benzonitrile-to-benzylamine transformation and suppressing side reactions and the competing hydrogen evolution reaction.

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Cite This Study

Jiang et al. (2026) studied this question.

synapsesocial.com/papers/69cb645fe6a8c024954b89b6https://doi.org/10.1021/acsnano.5c22661
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