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Polarized Ultrathin BN Induced Dynamic Electron Interactions for Enhancing Acidic Oxygen Evolution. | LitMetric

AI Article Synopsis

  • Developing efficient catalysts for oxygen evolution reactions (OER) is crucial, and the study introduces a novel defect-rich ultrathin boron nitride nanosheet that enhances performance via better electron interaction with ruthenium oxide (RuO).
  • The catalyst achieves a low OER overpotential of 180 mV and demonstrates long-term stability of 350 hours, indicating its practicality for real-world applications.
  • In-depth analysis reveals that electron-rich Ru sites improve water molecule interaction and help prevent over-oxidation, offering insights into creating stable and effective catalytic interfaces.

Article Abstract

Developing ruthenium-based heterogeneous catalysts with an efficient and stable interface is essential for enhanced acidic oxygen evolution reaction (OER). Herein, we report a defect-rich ultrathin boron nitride nanosheet support with relatively independent electron donor and acceptor sites, which serves as an electron reservoir and receiving station for RuO, realizing the rapid supply and reception of electrons. Through precisely controlling the reaction interface, a low OER overpotential of only 180 mV (at 10 mA cm) and long-term operational stability (350 h) are achieved, suggesting potential practical applications. In situ characterization and theoretical calculations have validated the existence of a localized electronic recycling between RuO and ultrathin BN nanosheets (BNNS). The electron-rich Ru sites accelerate the adsorption of water molecules and the dissociation of intermediates, while the interconnection between the O-terminal and B-terminal edge establishes electronic back-donation, effectively suppressing the over-oxidation of lattice oxygen. This study provides a new perspective for constructing a stable and highly active catalytic interface.

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Source
http://dx.doi.org/10.1002/anie.202402018DOI Listing

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