Record stack durability in industrial solid oxide steam electrolysis through operational control

Solid oxide steam electrolysis offers the highest electrical efficiency for hydrogen production, yet wide-scale deployment remains constrained by durability. Here, we show that long-term stack durability can be strongly influenced by operating strategy, achieving 25,000 h of steam electrolysis operation in a full 70-cell solid oxide electrolysis cell stack under frequency-dependent electrochemical operation (AC:DC). This experiment represents, to our knowledge, the longest and lowest degradation operation reported for a full stack. The stack enters a stabilized regime with an average voltage degradation rate of 0.05 % kh⁻¹ (0.65 mV kh⁻¹ per cell) sustained for 22,000 h after initial conditioning. The behavior is evaluated against initial DC operation, prior full-stack benchmarks, impedance evolution, and post-test microstructural signatures. Periodic polarity inversion between electrolysis and fuel-cell modes modulates electrochemical polarization and heat generation, consistent with mitigating thermal and electrochemical gradients that develop during sustained DC electrolysis. Stack-level impedance evolution and post-mortem microstructural analysis demonstrate stabilization of electrochemical performance and suppression of degradation signatures commonly observed under DC operation, indicating that key degradation pathways are not activated under AC:DC operation. By shifting durability control from materials to operational strategy, AC:DC operation offers a scalable pathway toward long-lived solid oxide electrolysis for economically competitive green hydrogen production. Demonstration of a long and low degradation solid oxide steam electrolysis experiment for a full SOEC stack, achieving 25,000 hours of operation through AC:DC operation showing potential for low-cost green hydrogen production.

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Journal
Nature Communications
Published
2026-09-24
DOI
https://doi.org/10.1038/s41467-026-78001-1
Primary Topic
Advancements in Solid Oxide Fuel Cells
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article
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article

Record stack durability in industrial solid oxide steam electrolysis through operational control

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Nature Communications
Advancements in Solid Oxide Fuel Cells
article

Record stack durability in industrial solid oxide steam electrolysis through operational control

Vincenzo Esposito, Mogens Bjerg Mogensen, Thomas Erik Lyck Smitshuysen, Dario Montinaro, Henrik Lund Frandsen, Javid Beyrami, Marie Lund Traulsen, Vasileios Bilalis, Olivia Fjord Sloth, Ming Chen, Søren Højgaard Jensen, Martin N. Nielsen, Jan Pieter Ouweltjes
article en

Abstract

Solid oxide steam electrolysis offers the highest electrical efficiency for hydrogen production, yet wide-scale deployment remains constrained by durability. Here, we show that long-term stack durability can be strongly influenced by operating strategy, achieving 25,000 h of steam electrolysis operation in a full 70-cell solid oxide electrolysis cell stack under frequency-dependent electrochemical operation (AC:DC). This experiment represents, to our knowledge, the longest and lowest degradation operation reported for a full stack. The stack enters a stabilized regime with an average voltage degradation rate of 0.05 % kh⁻¹ (0.65 mV kh⁻¹ per cell) sustained for 22,000 h after initial conditioning. The behavior is evaluated against initial DC operation, prior full-stack benchmarks, impedance evolution, and post-test microstructural signatures. Periodic polarity inversion between electrolysis and fuel-cell modes modulates electrochemical polarization and heat generation, consistent with mitigating thermal and electrochemical gradients that develop during sustained DC electrolysis. Stack-level impedance evolution and post-mortem microstructural analysis demonstrate stabilization of electrochemical performance and suppression of degradation signatures commonly observed under DC operation, indicating that key degradation pathways are not activated under AC:DC operation. By shifting durability control from materials to operational strategy, AC:DC operation offers a scalable pathway toward long-lived solid oxide electrolysis for economically competitive green hydrogen production. Demonstration of a long and low degradation solid oxide steam electrolysis experiment for a full SOEC stack, achieving 25,000 hours of operation through AC:DC operation showing potential for low-cost green hydrogen production.

Nature Communications
Y-Parc (Switzerland) (CH), Aalborg University (DK), Technical University of Denmark (DK)
Openalex Percentile: Top 25%
Advancements in Solid Oxide Fuel Cells
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