Investigate the symmetrical electrode material based on Pr and Ni doping SmBaFe2O5+δ for its electrochemical and stability performance for solid oxide cell
Yunfei Li , Dong Guo , Aoye Li , Dongchao Qiu , Bingbing Niu , Biao Wang
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引用次数: 0
Abstract
Symmetrical solid oxide cell (SSOC) that uses the same electrode material for both oxygen electrode and fuel electrode can simplify the preparation process and enhance the durability of the cell. In this study, the Pr and Ni doped SmBaFe2O5+δ (SBF), Sm0.9Pr0.1BaFe2O5+δ (SPBF91) and Sm0.9Pr0.1BaFe1.6Ni0.4O5+δ (SPBFN) as symmetrical electrodes for SSOC are successfully prepared, and their properties are investigated. First principles calculation indicates that the oxygen vacancy formation energy of SPBF91 (2.24 eV), SPBFN (1.76 eV) is lower than that of SBF (2.49 eV). In addition, the doping of Pr and Ni significantly reduces the band center energy of Fe-3d and O-2p in SPBFN, which is conducive to oxygen ion and charge transfer. At 800 °C, the polarization resistance of SPBFN are 0.025 Ωcm2, and 0.11 Ωcm2 in air and H2, respectively. At 800 °C, using H2, CH3OH, and wet C3H8 as fuel, the maximum power density (MPD) of fuel cell with SPBFN as a symmetrical electrode reaches 850, 651 and 648 mWcm−2, respectively. The FeNi alloy is observed on the SPBFN surface at fuel electrode side. The FeNi alloy on SPBFN surface significantly improves the output performance and stability of symmetrical electrode. Furthermore, the solid oxide electrolysis cell (SOEC) with PBSFN as a symmetrical electrode exhibits good stability during a 200 h test when electrolyzing H2-50%H2O and electrolysis CO2.
期刊介绍:
The Journal of Power Sources is a publication catering to researchers and technologists interested in various aspects of the science, technology, and applications of electrochemical power sources. It covers original research and reviews on primary and secondary batteries, fuel cells, supercapacitors, and photo-electrochemical cells.
Topics considered include the research, development and applications of nanomaterials and novel componentry for these devices. Examples of applications of these electrochemical power sources include:
• Portable electronics
• Electric and Hybrid Electric Vehicles
• Uninterruptible Power Supply (UPS) systems
• Storage of renewable energy
• Satellites and deep space probes
• Boats and ships, drones and aircrafts
• Wearable energy storage systems