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镧锶铁钼氧化物作为固体氧化物电解池阴极材料的电化学性能

Electrochemical properties of LaSrFeMoO as cathode materials for IT-SOEC.

作者信息

Hou Yunting, Wang Yadun, Wang Lijun, Zhang Qifei, Chou Kuo-Chih

机构信息

Collaborative Innovation Center of Steel Technology, University of Science and Technology Beijing Beijing 100083 China

State Key Laboratory of Advanced Metallurgy, University of Science and Technology Beijing Beijing 100083 China.

出版信息

RSC Adv. 2021 Sep 28;11(51):32077-32084. doi: 10.1039/d1ra06197f. eCollection 2021 Sep 27.

Abstract

Solid oxide electrolysis cells (SOECs) are a new type of high-efficiency energy conversion device that can electrolyze CO efficiently and convert electricity into chemical energy. However, the lack of efficient and stable cathodes hinders the practical application of CO electrolysis in SOECs. Herein, a novel perovskite oxide LaSrFeMoO (LSFMo) is synthesized and used as a cathode for SOECs. The introduction of Mo significantly improves the CO tolerance of the material in a reducing atmosphere and solves the problem of SrCO generation in the LaSrFeO material. Mo ion doping promotes the conductivity in a reducing atmosphere and increases the oxygen deficiencies of the material, which lowers the ohmic resistance ( ) of the material and significantly improves the CO adsorption and dissociation in the middle-frequency of polarization resistance ( ). For example, decreases from 0.49 to 0.24 Ω cm at 800 °C under 1.2 V. Further, the reduction of and increases the performance improvement, and the current density is increased from 1.56 to 2.13 A cm at 800 °C under 2 V. Furthermore, LSFMo shows reasonable short-term stability during the 60 h stability test.

摘要

固体氧化物电解槽(SOECs)是一种新型的高效能量转换装置,能够高效电解CO并将电能转化为化学能。然而,缺乏高效稳定的阴极阻碍了SOECs中CO电解的实际应用。在此,合成了一种新型钙钛矿氧化物LaSrFeMoO(LSFMo)并将其用作SOECs的阴极。Mo的引入显著提高了材料在还原气氛中的CO耐受性,并解决了LaSrFeO材料中SrCO生成的问题。Mo离子掺杂促进了还原气氛中的导电性并增加了材料的氧缺陷,降低了材料的欧姆电阻( ),并显著提高了极化电阻( )中频下的CO吸附和解离。例如,在1.2 V下800 °C时, 从0.49降至0.24 Ω·cm。此外, 和 的降低提高了性能,在2 V下800 °C时电流密度从1.56增加到2.13 A·cm 。此外,LSFMo在60小时稳定性测试期间表现出合理的短期稳定性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e9e8/9041719/0d89495756e4/d1ra06197f-f1.jpg

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