Influence of ZnO addition on microstructure and proton electrical conductivity of BaZr0.8Y0.2O3-δ ceramics

材料科学 烧结 微观结构 晶界 电导率 锆酸盐 晶粒生长 陶瓷 扫描电子显微镜 电解质 相(物质) 化学工程 介电谱 电阻率和电导率 复合材料 冶金 电极 物理化学 电化学 钛酸酯 化学 工程类 有机化学 电气工程
作者
Leonardo Pacheco Wendler,Kethlinn Ramos,Dulcina P. F. de Souza
出处
期刊:Processing and Application of Ceramics [University of Novi Sad]
卷期号:15 (2): 202-209 被引量:4
标识
DOI:10.2298/pac2102202w
摘要

Sintering aids are widely used to promote densification and grain growth for electrolytes based on yttriumdoped barium zirconate. However, there are some discrepancies in the literature about the influence of these sintering aids on the microstructure development. Some authors consider that ZnO remains on grain boundaries, forming an amorphous phase that promotes sintering, and others proposed that ZnO forms a solid solution with barium zirconate. Even considering different mechanisms, it was proposed that ZnO addition compromised protonic conductivity. In this work BaZr0.8Y0.2O3-? (BZY20) was prepared by conventional oxide mixture (solid state sintering), adding ZnO as sintering aid. We proposed a mechanism for the ZnO actuation on the microstructure development, by the formation of a liquid phase during sintering and formation of a vitreous phase throughout grain boundaries during cooling. This could be the reason for poor protonic conductivity in comparison to the undoped BZY20 electrolytes. The proposed mechanism was established through the scanning electron microscopy analyses and electrical conductivity measurements under several different atmospheres by impedance spectroscopy. High density samples were obtained by using ZnO, but with compromised electrical conductivity compared to the undoped samples.

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