蒸汽电解用浸渍氧化钴的复合阳极La0.8Sr0.2MnO3

Shisong Li, Jigui Cheng, Kui Xie, Peipei Li, Yucheng Wu
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引用次数: 3

摘要

氧离子导电固体氧化物电解槽(SOE)由于能将电能直接转化为化学能而引起了人们的广泛关注。固体氧化物电解槽阳极发生析氧反应(OER), O2-被氧化生成O2气体,被认为是蒸汽电解槽产生过电位的主要原因之一。本文研究了氧化钴浸渍La0.8Sr0.2MnO3 (LSM)复合阳极在氧化离子导电固体氧化物电解槽中电解蒸汽的过程。研究了LSM的电导率随温度和氧分压的变化,并与对称电池中复合电极在800℃时的电化学性能相关。在LSM电极中浸渍不同含量的Co3O4 (wt.1%、2%、4%、6%、8%、10%),发现对称电池的极化电阻(Rp)从1.16 Ω•cm2 (LSM)逐渐提高到0.24 Ω•cm2 (wt.10%Co3O4-LSM)。在800℃下对LSM和wt.6%Co3O4-LSM阳极电解槽进行了蒸汽电解测试,交流阻抗谱结果表明,在1.8V电解电压下,高频过程的Rp从1.1 Ω•cm2 (LSM)显著降低到0.5 Ω•cm2 (wt.6%Co3O4-LSM),低频过程的Rp从14.9 Ω•cm2显著降低到5.7 Ω•cm2。电化学催化剂Co3O4能有效地改善电极,提高高温固体氧化物电解槽的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Composite anode La0.8Sr0.2MnO3 impregnated with cobalt oxide for steam electrolysis
Oxygen-ion conducting solid oxide electrolyzer (SOE) has attracted a great deal of interest because it converts electrical energy into chemical energy directly. The oxygen evolution reaction (OER) is occurred at the anode of solid oxide electrolyzer as the O2- being oxidized and form O2 gas, which is considered as one of the major cause of overpotentials in steam electrolyzers. This paper investigates the electrolysis of steam based on cobalt oxide impregnated La0.8Sr0.2MnO3 (LSM) composite anode in an oxide-ion-conducting solid oxide electrolyzer. The conductivity of LSM is studied versus temperature and oxygen partial pressure and correlated to the electrochemical properties of the composite electrodes in symmetric cells at 800 °C. Different contents of Co3O4 (wt.1%, 2%, 4%, 6%, 8%, 10%) were impregnated into LSM electrode and it was found that the polarization resistance (Rp) of symmetric cells gradually improved from 1.16 Ω•cm2 (LSM) to 0.24 Ω•cm2 (wt.10%Co3O4-LSM). Steam electrolysis based on LSM and wt.6%Co3O4-LSM anode electrolyzers are tested at 800°C and the AC impedance spectroscopy results indicated that the Rp of high frequency process significantly decreased from1.1 Ω•cm2 (LSM) to 0.5 Ω•cm2 (wt.6%Co3O4-LSM) under 1.8V electrolysis voltage and the Rp of low frequency process decreased from 14.9 Ω•cm2 to 5.7 Ω•cm2. Electrochemical catalyst Co3O4 can efficiently improve the electrode and enhance the performance of high temperature solid oxide electrolyzer.
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