High-entropy engineering tuning electrochemical activity and stability of a layered double perovskite oxygen electrode for high-performance protonic ceramic cells

Abstract

Developing robust, highly active oxygen electrodes for protonic ceramic cells (PCCs) represents a crucial step in the pursuit for the efficient production of hydrogen and electricity at reduced temperatures. Here, we leverage a high-entropy design to introduce a multicomponent A-site double perovskite, Pr0.2La0.2Sm0.2Nd0.2Gd0.2BaCo2O5+δ (PBC-HE), as a high performance oxygen electrode for PCCs. Compared with the parent PrBaCo2O5+δ (PBC), PBC-HE exhibits superior proton uptake ability, a markedly higher oxygen vacancy concentration, and enhanced thermal stability. The electrode reaction kinetics is significantly accelerated. The PBC-HE electrode achieves a low polarization resistance of 0.064 Ω cm2 at 700 °C and, when integrated into a BaZr0.1Ce0.7Y0.1Yb0.1O3−δ-based cell, delivers a high peak power density of 1.01 W cm−2 in fuel-cell mode. Under 10 vol% H2O at the oxygen electrode, it sustains a current density of 1.74 A cm−2 at 1.3 V in electrolysis cell mode at 700 °C. PBC-HE also exhibits remarkable durability, operating stably for 140 h in fuel cell mode and 100 h in electrolysis cell mode. These finding demonstrate that the rationally designed high-entropy double perovskite holds a great promise as high performance oxygen electrodes for application in PCCs.

Graphical abstract: High-entropy engineering tuning electrochemical activity and stability of a layered double perovskite oxygen electrode for high-performance protonic ceramic cells

Supplementary files

Article information

Article type
Paper
Submitted
13 Aug 2025
Accepted
28 Nov 2025
First published
28 Nov 2025

J. Mater. Chem. A, 2026, Advance Article

High-entropy engineering tuning electrochemical activity and stability of a layered double perovskite oxygen electrode for high-performance protonic ceramic cells

Z. Sun, Z. Du, K. Świerczek, J. Zeng and H. Zhao, J. Mater. Chem. A, 2026, Advance Article , DOI: 10.1039/D5TA06570D

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