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Plasma-Enhancement of Oxygen Pumping: The Role of Atomic Oxygen

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Abstract

Sluggish surface oxygen reduction kinetics remain a principal barrier to efficient oxygen pumping in solid oxide electrochemical cells (SOECs), where dissociative adsorption of O2 on lanthanum strontium manganite (LSM) electrodes is widely established as the rate-limiting step, particularly under reduced oxygen partial pressure and cathodic polarization conditions. While low-temperature plasmas generate reactive oxygen species, their coupling to electrochemical oxygen transport has not been quantitatively addressed. This work couples an oxygen-containing glow discharge to a symmetric LSM|YSZ|LSM SOEC to directly supply reactive oxygen species to the SOEC cathode. A 180% increase in oxygen pumping capacity is observed at 585 °C in 1 Torr He (80%)-O2 (20%) plasma at 470 W. Open-circuit voltage (OCV) measurements reveal a shift in electrochemical equilibrium consistent with increased surface oxygen activity. A surface reaction model identifies atomic oxygen as the dominant contributor to this enhancement. These findings demonstrate plasma-electrochemical coupling as a viable route to solid oxide oxygen separation at reduced operating temperatures.

Year of Publication
2026
Journal
Journal of Physical Chemistry C
Volume
130
Number of Pages
in press
DOI
Dataset
PId
08e3e1793c0b28d08dbc1bda4f24cb56
Alternate Journal
J. Phys. Chem. C
Label
OA
Journal Article
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Citation
Chen, X., Pikalev, A., Bera, S., Tsampas, M. N., Zhang, G. J., & van de Sanden, M. C. M. (2026). Plasma-Enhancement of Oxygen Pumping: The Role of Atomic Oxygen. Journal of Physical Chemistry C, 130, in press. https://doi.org/10.1021/acs.jpcc.6c02560