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Research Article | Open Access | Online First

Cation-driven charge modulation and in-situ exsolved nanoparticles enable a self-assembled cathode for proton ceramic solid oxide cells

Mengen Shao1Xinyu Zhao2,3Chaowei Tang1Yuling Yuan1Guangming Yang4Yan Chen5Jaroslaw Milewski6Tao Hong7Yu Liu3Zuoqing Liu1( )Youmin Guo1( )
School of Materials Science and Engineering, Anhui University, Hefei 230601, China
School of Energy and Mechanical Engineering, Nanjing Normal University, Nanjing 210023, China
Energy Storage Research and Development Center, Institute of Engineering Thermophysics, Chinese Academy of Sciences, Beijing 100190, China
College of Chemical Engineering, Nanjing Tech University, Nanjing 211800, China
Guangdong Provincial Key Laboratory of Solid Wastes Pollution Control and Recycling, School of Environment and Energy, South China University of Technology, Guangzhou 510006, China
Faculty of Power and Aeronautical Engineering, Warsaw University of Technology, Warsaw 00-661, Poland
School of Materials Science and Engineering, Hefei University of Technology, Hefei 230009, China
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Abstract

Protonic ceramic fuel cells (PCFCs) offer considerable potential for clean and efficient energy conversion at intermediate temperatures. However, their application is constrained by the trade-off between insufficient electrode activity and limited operational durability. Here, we develop a Zn/Yb B-site codoping strategy combined with temperature-induced nanoparticle exsolution to construct a triple-conducting cathode. This approach introduces cation-driven charge modulation that enhances ionic diffusion and electronic conduction, while the exsolved secondary BaCoO3−δ phase plays a pivotal role in increasing the density of active sites, optimizing interfacial charge transfer, and synergistically promoting oxygen reduction reaction (ORR) kinetics. Zn/Yb codoping redistributes the local charge density, weakens metal–oxygen bonds, and reduces the energy required for oxygen vacancy formation, promoting oxygen vacancy generation. The increased oxygen vacancy concentration facilitates surface oxygen activation and lattice hydration, enhancing oxygen–ion and proton transport. Meanwhile, enhanced d–p orbital hybridization improves the electronic conductivity and accelerates charge transfer kinetics. In addition, the optimized alkaline–earth sites suppress carbonate formation, thereby imparting excellent CO2 tolerance. As a result, the optimized cathode delivers a peak power density of 0.99 W·cm−2 at 600 °C and stable operation over 100 h, with a polarization resistance of 0.110 Ω·cm2 under 20% H2O-air. This work provides a novel strategy for the optimization of activity, conductivity, and stability in PCFC cathodes.

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Journal of Advanced Ceramics

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Cite this article:
Shao M, Zhao X, Tang C, et al. Cation-driven charge modulation and in-situ exsolved nanoparticles enable a self-assembled cathode for proton ceramic solid oxide cells. Journal of Advanced Ceramics, 2026, https://doi.org/10.26599/JAC.2026.9221340

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Received: 25 April 2026
Revised: 27 May 2026
Accepted: 18 June 2026
Published: 18 August 2026
© The Author(s) 2026.

This is an open access article under the terms of the Creative Commons Attribution 4.0 International License (CC BY 4.0, http://creativecommons.org/licenses/by/4.0/).