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February 5, 2026Advanced Materials5 citations

A‐Site High‐Entropy Engineering of Oxygen Electrode: A Promising Route to Durable and Active Reversible Solid Oxide Cells

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XLXuelian LiJFJiangyuan FengNSNing Sun

Key Points

  • The aim is to improve the electrocatalytic activity and stability of oxygen electrodes in reversible solid oxide cells (RSOCs).
  • Designing a high-entropy single-phase perovskite material
  • Testing a PNSBSC-based button cell in fuel cell and electrolysis modes
  • Evaluating performance across varying temperatures and operational durations
  • Conducting first-principles calculations to analyze activity and stability
  • PNSBSC cell achieves a peak power density of 2.06 W cm −2 in fuel cell mode
  • Demonstrates a high current density of 2.54 A cm −2 at 1.3 V in electrolysis mode at 800 °C
  • Maintains 120 hours of continuous operation without performance loss
  • Supports three reversible cycles at 700 °C with stable performance
  • Shows robustness in large-area cell testing with over 80 hours of stability

Abstract

ABSTRACT Reversible solid oxide cells (RSOCs) are promising for their highly efficient power‐fuel interconversion and serve as a critical technology for building a carbon‐neutral energy ecosystem. However, their widespread implementation is impeded by insufficient electrocatalytic activity and stability of conventional oxygen electrodes. Here, we design a high‐entropy single‐phase perovskite, Pr 0.2 Nd 0.2 Sm 0.2 Ba 0.2 Sr 0.2 CoO 3‐δ (PNSBSC), engineered from Sm 0.6 Sr 0.4 CoO 3‐δ (SSC), to overcome the classic activity‐stability trade‐off in perovskite oxides. A PNSBSC‐based button cell delivers a peak power density of 2.06 W cm −2 in fuel cell mode and a high current density of 2.54 A cm −2 at 1.3 V in electrolysis mode (50% H 2 O) at 800 °C. The cell also demonstrates exceptional stability, sustaining 120 h of continuous operation in both modes and three reversible cycles at 700 °C without performance degradation. Its scalability and robustness are further verified using a large‐area cell (30 W output, >80 h stability) and by sustaining a notable 40 A electrolysis current at 1.3 V (80% H 2 O, 750 °C). First‐principles calculations corroborate the enhanced activity and stability, which are attributed to the high‐configurational‐entropy design. This work establishes entropy engineering as a viable paradigm for developing high‐performance and durable electrodes for advanced RSOCs.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/698433a5f1d9ada3c1fb0f51https://doi.org/10.1002/adma.202521863
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