4.8 Article

A robust air electrode supported proton-conducting reversible solid oxide cells prepared by low temperature co-sintering

Journal

JOURNAL OF POWER SOURCES
Volume 492, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.jpowsour.2021.229602

Keywords

Stability; Proton conductor; Air electrode support; Energy conversion; Reversible solid oxide cell

Funding

  1. National Natural Science Foundation of China [51672294]
  2. Shanghai Engineering Research Center of Inorganic Energy Materials and Electric Power Sources [18DZ2280800]

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This research investigates the potential of using air electrode supported Ni-BCZYYC | BCZYYC | LSN-BCZYYC single cells for medium temperature applications. The results show promising current density and power density, indicating the stability and potential of this design.
The developments of proton conductive reversible solid oxide cells (H-RSOCs) for medium temperature applications are greatly hampered by the limited availability of appropriate hydrogen electrode materials. Air electrode support liberates hydrogen electrode from being support body, expanding the scope of materials research and microstructure modification of hydrogen electrode. The prevalent solid oxide fuel cells air electrode La-1.2 Sr0.8NiO4 (LSN) is investigated as support for the reversible cell because of its excellent electrochemical properties in this research. Good chemical compatibility has been demonstrated between LSN and BaCe0.68Zr0.1Yb0.1Cu0.02O3-delta (BCZYYC) proton conductor. Air electrode supported Ni-BCZYYC vertical bar BCZYYC vertical bar LSN-BCZYYC single cells are prepared at a quite low temperature (1200 degrees C) and characterized. The single cell achieved a current density of 297 mA cm(-2) at 1.3 V and a maximum power density (MPD) of 120 mW cm(-2) in fuel cell operational mode at 700 degrees C, which is encouraging to get such performance by adopting both un-modified hydrogen and oxygen electrode. The cell performance remains stable during the switching of electrolysis cell and fuel cell mode of 400 h and stays stable after 20 thermal cycles and 5 fuel gas interruptions, which makes it the most stable proton-conducting reversible cells so far, indicating that LSN-BCZYYC is the potential support for H-RSOC.

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