Materials (May 2020)

Molten Salt Synthesis of High-Performance, Nanostructured La<sub>0.6</sub>Sr<sub>0.4</sub>FeO<sub>3−δ</sub> Oxygen Electrode of a Reversible Solid Oxide Cell

  • Xiaodong Zuo,
  • Zhiyi Chen,
  • Chengzhi Guan,
  • Kongfa Chen,
  • Sanzhao Song,
  • Guoping Xiao,
  • Yuepeng Pang,
  • Jian-Qiang Wang

DOI
https://doi.org/10.3390/ma13102267
Journal volume & issue
Vol. 13, no. 10
p. 2267

Abstract

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Nanoscale perovskite oxides with enhanced electrocatalytic activities have been widely used as oxygen electrodes of reversible solid oxide cells (RSOC). Here, La0.6Sr0.4FeO3−δ (LSF) nanoscale powder is synthesized via a novel molten salt method using chlorides as the reaction medium and fired at 850 °C for 5 h after removing the additives. A direct assembly method is employed to fabricate the LSF electrode without a pre-sintering process at high temperature. The microstructure characterization ensures that the direct assembly process will not damage the porosity of LSF. When operating as a solid oxide fuel cell (SOFC), the LSF cell exhibits a peak power density of 1.36, 1.07 and 0.7 W/cm2 at 800, 750 and 700 °C, respectively, while in solid oxide electrolysis cell (SOEC) mode, the electrolysis current density reaches 1.52, 0.98 and 0.53 A/cm2 under an electrolysis voltage of 1.3 V, respectively. Thus, it indicates that the molten salt routine is a promising method for the synthesis of highly active perovskite LSF powders for directly assembled oxygen electrodes of RSOC.

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