A Comparative Study of the Performance and Electrode Processes of Solid Oxide H 2 O Electrolysis and CO 2 Electrolysis

Solid oxide CO 2 electrolysis was less studied compared with H 2 O electrolysis and the relevant reaction mechanism and electrode processes were poorly understood. This paper investigated the performance and electrode processes differences between CO 2 electrolysis and H 2 O electrolysis. The shape...

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Veröffentlicht in:ECS transactions 2023-05, Vol.111 (6), p.1297-1299
Hauptverfasser: Liang, Jingjing, Han, Minfang, Ni, Meng
Format: Artikel
Sprache:eng
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Zusammenfassung:Solid oxide CO 2 electrolysis was less studied compared with H 2 O electrolysis and the relevant reaction mechanism and electrode processes were poorly understood. This paper investigated the performance and electrode processes differences between CO 2 electrolysis and H 2 O electrolysis. The shape of j-V curves, electrochemical impedance spectroscopy data and calculated distribution relaxation time results were analyzed. It was found that the performance of CO 2 electrolysis degraded the most compared with that in SOFC mode and for H2O electrolysis after a 65 h’ operation. Meanwhile, j-V curve of CO 2 electrolysis changed a lot and finally showed a convex total resistance pattern with applied current. It was also found that the characteristic frequency of charge transfer reaction and diffusion process for CO 2 electrolysis was much lower than that of H 2 O electrolysis. A thermal activated peak at 10-100 Hz which was not noted for H2O electrolysis was considered to be CO 2 adsorption and dissociation process in fuel electrode. Besides, diffusion process for H 2 O-H 2 and CO 2 -CO mixture also differed. Finally, it was indicated that the different performance degradation may be due to different suppressed degree of charge transfer reaction in fuel electrode for H2O electrolysis and CO 2 electrolysis and additional suppressed adsorption or dissociation process of CO 2 for CO 2 electrolysis.
ISSN:1938-5862
1938-6737
DOI:10.1149/11106.1297ecst