共 50 条
Study of a novel microstructured air electrode/electrolyte interface for solid oxide cells
被引:8
作者:
Basbus, J. F.
[1
,2
]
Cademartori, D.
[1
]
Asensio, A. M.
[1
]
Clematis, D.
[1
]
Savio, L.
[3
]
Pani, M.
[4
,5
]
Gallus, E.
[6
]
Carpanese, M. P.
[1
,2
]
Barbucci, A.
[1
,2
]
Presto, S.
[2
]
Viviani, M.
[2
]
机构:
[1] Univ Genova UniGe, Dept Civil Chem & Environm Engn DICCA, Via Opera Pia 15, I-16145 Genoa, GE, Italy
[2] Natl Res Council CNR, Inst Condensed Matter Chem & Technol Energy ICMATE, DICCA UniGe, Via Opera Pia 15, I-16145 Genoa, GE, Italy
[3] CNR, Inst Mat Elect & Magnetism IMEM, Genoa Unit, Via Dodecaneso 33, I-16146 Genoa, GE, Italy
[4] UniGe, Dept Chem & Ind Chem DCCI, Via Dodecaneso 31, I-16146 Genoa, GE, Italy
[5] CNR, Supercond & Other Innovat Mat & Devices Inst SPIN, Corso Perrone 24, I-16152 Genoa, GE, Italy
[6] Kirana Srl Laser Micromachining, Via Fortunato Zeni 8, I-38068 Rovereto, TN, Italy
关键词:
IT-SOCs;
Pulsed laser patterning;
Pillar shape microstructure;
Morphological chemical and electrical;
characterization;
Air electrode/electrolyte interface degradation;
FUEL-CELLS;
IONIC-CONDUCTIVITY;
ELECTROLYTE;
CO;
LA0.6SR0.4CO0.2FE0.8O3-DELTA;
PERFORMANCE;
CATHODES;
HYDROGEN;
D O I:
10.1016/j.apsusc.2024.159372
中图分类号:
O64 [物理化学(理论化学)、化学物理学];
学科分类号:
070304 ;
081704 ;
摘要:
Solid Oxide Cells (SOCs) are promising high temperature electrochemical devices to obtain clean energies from renewable sources. Their high operating temperatures (800-1000 degrees C) contribute to the degradation of the cell components. Intermediate Temperature SOCs (IT-SOCs) appear as an alternative to decrease the operating temperatures (600-800 degrees C) and avoid cell degradation, nevertheless, the electrochemical performance is affected by energy dissipation, principally by the air electrode overpotentials. This work presents the surface modification of Ce0.80Sm0.20O2-delta (SDC) electrolyte by Femtosecond Laser Micromachining (FLM) to increase the surface/area ratio and therefore improve the electrochemical performance. A pattern with an equally spaced pillar shape microstructure was obtained and characterized. (La0.60Sr0.40)(0.95)Co0.20Fe0.80O3-delta (LSCF) powder was used as porous air electrode to determine the electrochemical benefits of the pattern. Polarization resistance (R-p) of air electrode in patterned sample was about five times lower than in flat one at 600 degrees C and after 45 h, which suggested an improvement in the electrical and chemical features over time. These enhancements could be explained by the synergistic effect among surface/area ratio, nano-microcrystalline domains and superficial Ce3+ concentration in the patterned electrolyte. R-p values are higher than those reported for best air electrodes, however, FLM has proven its benefits in electrochemical performance.
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页数:9
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