Insight into Grain and Grain‐Boundary Transport of Proton‐Conducting Ceramics: A Case Report of BaSn0.8Y0.2O3−δ

材料科学 晶界 陶瓷 介电谱 电解质 烧结 氧化物 晶粒生长 电导率 粒度 离子电导率 电化学 复合材料 微观结构 冶金 电极 物理化学 化学
作者
Inna A. Zvonareva,George N. Starostin,Mariam T. Akopian,G. K. Vdovin,Д.А. Осинкин,Baptiste Py,Adeleke Maradesa,Francesco Ciucci,Dmitry A. Medvedev
出处
期刊:Advanced Functional Materials [Wiley]
被引量:11
标识
DOI:10.1002/adfm.202307316
摘要

Abstract Proton‐conducting ceramic electrolytes offer great potential for the development of low‐ and intermediate‐temperature solid oxide electrochemical devices, e.g., fuel cells and electrolyzers. However, the electrolyte constitutes the main bottleneck in such devices, especially at reduced temperatures, determining their overall performance and efficiency. Herein, for the first time the low‐temperature transport properties of BaSn 0.8 Y 0.2 O 3−δ as a representative of proton‐conducting materials are investigated. The attention is focussed on grain and grain boundary conductivity of this ceramic material over a wide range of experimental conditions, including temperatures of 400–550 °C, oxygen partial pressures of 10 −22 –0.21 atm, and water vapor partial pressures of 10 −5 ‐0.03 atm. After analyzing BaSn 0.8 Y 0.2 O 3−δ with electrochemical impedance spectroscopy under these experimental conditions, the distribution of relaxation times is leveraged to evaluate the resistance, capacitance, and frequency of each electrolytic process. The data show that the BSY ceramic, prepared with CuO as a sintering additive, is characterized by three distinct processes: one is due to grain response, and two others are understood to be related to the responses of the pure and CuO‐covered grain boundaries. Therefore, this work opens a new path for the analysis of ionic, including protonic, transport along grains and grain boundaries.
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