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November 13, 2025Advanced MaterialsOpen Access

Trace Chlorine‐Induced Lattice Oxygen Activation for Enhanced High‐Temperature CO 2 Electrolysis

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Authors

SZShaowei ZhangXHXueyu HuTLTianfu Liu

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Overview

Novel approach enhances CO2 reduction kinetics in perovskite oxides, indicating improved stability and efficiency.

Key Points

  • CO2 reduction kinetics improved significantly with a perovskite oxides approach, enhancing reactivity for electrolysis.
  • The oxychloride cathode showed impressive results with up to 80.8% CO2 conversion and ≈100% Faradaic efficiency at 800 °C.
  • Observational analysis highlights the role of chlorine anion engineering in boosting catalytic activity and stability.
  • Potential implications for electrocatalytic reactions with improved performance in high-temperature settings.

Cite This Study

Zhang et al. (2025) studied this question.

synapsesocial.com/papers/692523c1c0ce034ddc354dd7https://doi.org/10.1002/adma.202518116
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