TY - JOUR
T1 - Ultra durable composite steam electrode with cube-shaped BaZr0.85Y0.15O3-δfacet-boosted efficiency toward advanced protonic ceramic electrolysis cells
AU - Yu, Xiaole
AU - Ge, Lin
AU - Wu, Bangze
AU - Yu, Zhexiang
AU - He, Bingyu
AU - Jin, Zhanheng
AU - Zhao, Zenan
AU - Chen, Han
AU - Zheng, Yifeng
AU - Cui, Sheng
N1 - Publisher Copyright:
© The Author(s) 2025.
PY - 2025/3
Y1 - 2025/3
N2 - Protonic ceramic electrolysis cells (PCECs) have attracted significant interest because of their efficiency and environmental sustainability in energy conversion. However, their commercial application is hindered by the absence of effective and robust electrodes capable of operating in harsh environments, such as those characterized by high vapor or CO2 concentrations. In this study, we developed a stable steam electrode composed of PrBaMn2O5+δ (PBM) and the durable proton conductor BaZr0.85Y0.15O3-δ (BZY), which was enhanced with the deposition of PrOx nano-catalysts. The composite electrode exhibited a low polarization resistance (~0.34 Ω·cm2 at 600 °C), comparable to that of conventional cobalt-based electrodes. Additionally, extensive testing over hundreds of hours under severe conditions revealed exceptional durability, with no significant degradation observed. Notably, the electrode composited with cube-shaped BZY microcrystals and PBM showed a higher proton conductivity of 2.15×10-5 S·cm-1 at 500 °C, representing an entire order of magnitude greater than that of the electrode composited with irregular nanosized BZY. In addition, the single cell achieved a superior electrolysis current of 2.0 A·cm-2 at 700 °C and 1.3 V. These findings demonstrate the superiority of constructing an innovative interface between the mixed ionic-electronic conductor (MIEC) and the proton conductor. Our work presents a promising strategy for designing durable steam electrodes for PCECs through a rational compositing approach.
AB - Protonic ceramic electrolysis cells (PCECs) have attracted significant interest because of their efficiency and environmental sustainability in energy conversion. However, their commercial application is hindered by the absence of effective and robust electrodes capable of operating in harsh environments, such as those characterized by high vapor or CO2 concentrations. In this study, we developed a stable steam electrode composed of PrBaMn2O5+δ (PBM) and the durable proton conductor BaZr0.85Y0.15O3-δ (BZY), which was enhanced with the deposition of PrOx nano-catalysts. The composite electrode exhibited a low polarization resistance (~0.34 Ω·cm2 at 600 °C), comparable to that of conventional cobalt-based electrodes. Additionally, extensive testing over hundreds of hours under severe conditions revealed exceptional durability, with no significant degradation observed. Notably, the electrode composited with cube-shaped BZY microcrystals and PBM showed a higher proton conductivity of 2.15×10-5 S·cm-1 at 500 °C, representing an entire order of magnitude greater than that of the electrode composited with irregular nanosized BZY. In addition, the single cell achieved a superior electrolysis current of 2.0 A·cm-2 at 700 °C and 1.3 V. These findings demonstrate the superiority of constructing an innovative interface between the mixed ionic-electronic conductor (MIEC) and the proton conductor. Our work presents a promising strategy for designing durable steam electrodes for PCECs through a rational compositing approach.
KW - cobalt-free electrode
KW - composite electrode
KW - proton conductivity
KW - protonic ceramic electrolysis cell (PCEC)
KW - steam electrode
UR - http://www.scopus.com/inward/record.url?scp=105002036606&partnerID=8YFLogxK
U2 - 10.26599/JAC.2025.9221036
DO - 10.26599/JAC.2025.9221036
M3 - 文章
AN - SCOPUS:105002036606
SN - 2226-4108
VL - 14
JO - Journal of Advanced Ceramics
JF - Journal of Advanced Ceramics
IS - 3
M1 - 9221036
ER -