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April 10, 2026Nanoscale1 citations

Anchored nanocatalysts enable efficient oxygen reduction in barium cobaltite cathodes

ILInSik LimHYHyun Sik YooDODongHwan Oh

Key Points

  • This research aims to improve the oxygen reduction kinetics in solid oxide fuel cells using ex-solution methods on barium cobaltite cathodes.
  • Doped BaCo0.8Ta0.2O3-δ with silver, copper, and nickel to induce ex-solution.
  • Analyzed structural and microscopic properties to confirm nanoparticle formation.
  • Conducted electrochemical measurements to evaluate polarization resistance.
  • Performed a single-cell test to measure power density.
  • Ex-solved barium cobaltite electrodes showed reduced polarization resistance, with eBCT-Ag achieving 0.0210 Ω cm² at 650 °C.
  • The eBCT-Ag electrode delivered a maximum power density of approximately 0.68 W cm² at 650 °C.
  • A nearly 49% reduction in resistance was observed in ex-solved versus non-ex-solvable counterparts.

Abstract

Solid oxide fuel cells (SOFCs) are hindered by sluggish oxygen reduction reaction (ORR) kinetics at the cathode. Ex-solution, which generates socketed nanoparticles from the perovskite lattice, offers a promising strategy to overcome this limitation but has rarely been applied to cathodes. In this work, BaCo0.8Ta0.2O3-δ (BCT) was doped with Ag, Cu, and Ni to induce ex-solution under controlled reducing conditions. Structural and microscopic analyses confirmed the formation of socketed nanoparticles on the perovskite surface. Electrochemical measurements showed that ex-solved cathodes exhibited reduced polarization resistance (Rp) compared to their non ex-solved counterparts, with ex-solved BCT-Ag (eBCT-Ag) achieving the lowest Rp (0.0210 Ω cm2 at 650 °C, ∼49% reduction). A single-cell test with eBCT-Ag delivered a maximum power density of ∼0.68 W cm-2 at 650 °C. These results demonstrate the successful application of ex-solution to SOFC cathodes, providing an effective pathway for high-performance cathode design.

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Cite This Study

Lim et al. (2026) studied this question.

synapsesocial.com/papers/69d896a46c1944d70ce0835chttps://doi.org/10.1039/d5nr04551g
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