TY - JOUR
T1 - A New Nanocomposite Electrode Developed from Environmental Atmosphere Triggered Reconstruction for Efficient Reversible Protonic Ceramic Cells
AU - Wu, Jie
AU - Xie, Zhenghui
AU - Liang, Mingzhuang
AU - Chen, Wanqing
AU - Liu, Dongliang
AU - Yi, Yongning
AU - Luo, Zhixin
AU - Ran, Ran
AU - Zhou, Wei
AU - Wang, Wei
AU - Shao, Zongping
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2025
Y1 - 2025
N2 - Reversible protonic ceramic cells (r-PCCs) are highly attractive energy storage and conversion technology, while the insufficient activity of state-of-the-art air electrodes at reduced temperatures strongly limits their practical applications. Herein, this work reports a reduction/re-oxidation strategy to design a new highly efficient, and durable nanocomposite air electrode for boosting the performance of r-PCCs operated at intermediate temperatures. Specifically, single-phase Ba(Co0.4Fe0.4Zr0.1Y0.1)0.9Ni0.1O3-δ perovskite is selected as the precursor, its treatment in hydrogen atmosphere at 450 °C and then re-oxidation in air leads to the formation of a nanocomposite, consisted of a perovskite-based main phase and BaCoO3-δ and NiO secondary-phase nanoparticles, where the BaCoO3-δ phase facilitates oxygen surface exchange while NiO nanoparticles promote surface oxygen/steam adsorption. The corresponding r-PCC exhibits superior performance at 550 °C in a symmetrical cell (0.162 Ω cm2), a single fuel cell (0.690 W cm−2) and an electrolysis cell (−1.066 A cm−2 at 1.3 V). Such nanocomposite is thermodynamically stable at intermediate temperatures and offers better thermomechanical compatibility with protonic electrolyte because of the reduced thermal expansion coefficient. As a result, superior durability in both fuel and electrolysis cell modes is demonstrated. This study paves a new way for designing outstanding air electrodes for r-PCCs with great application potential.
AB - Reversible protonic ceramic cells (r-PCCs) are highly attractive energy storage and conversion technology, while the insufficient activity of state-of-the-art air electrodes at reduced temperatures strongly limits their practical applications. Herein, this work reports a reduction/re-oxidation strategy to design a new highly efficient, and durable nanocomposite air electrode for boosting the performance of r-PCCs operated at intermediate temperatures. Specifically, single-phase Ba(Co0.4Fe0.4Zr0.1Y0.1)0.9Ni0.1O3-δ perovskite is selected as the precursor, its treatment in hydrogen atmosphere at 450 °C and then re-oxidation in air leads to the formation of a nanocomposite, consisted of a perovskite-based main phase and BaCoO3-δ and NiO secondary-phase nanoparticles, where the BaCoO3-δ phase facilitates oxygen surface exchange while NiO nanoparticles promote surface oxygen/steam adsorption. The corresponding r-PCC exhibits superior performance at 550 °C in a symmetrical cell (0.162 Ω cm2), a single fuel cell (0.690 W cm−2) and an electrolysis cell (−1.066 A cm−2 at 1.3 V). Such nanocomposite is thermodynamically stable at intermediate temperatures and offers better thermomechanical compatibility with protonic electrolyte because of the reduced thermal expansion coefficient. As a result, superior durability in both fuel and electrolysis cell modes is demonstrated. This study paves a new way for designing outstanding air electrodes for r-PCCs with great application potential.
KW - nanocomposite air electrode
KW - oxygen reduction/evolution reaction
KW - perovskite oxide
KW - reversible protonic ceramic cell
KW - surface reconstruction
UR - http://www.scopus.com/inward/record.url?scp=85215298034&partnerID=8YFLogxK
U2 - 10.1002/aenm.202404118
DO - 10.1002/aenm.202404118
M3 - 文章
AN - SCOPUS:85215298034
SN - 1614-6832
JO - Advanced Energy Materials
JF - Advanced Energy Materials
ER -