钙钛矿(结构)
极化(电化学)
材料科学
电导率
化学计量学
电介质
铁电性
分压
化学物理
铅(地质)
氧气
陶瓷
凝聚态物理
光电子学
化学
复合材料
结晶学
物理化学
有机化学
地质学
地貌学
物理
作者
Ze Xu,Yixuan Liu,Maryam Azadeh,Hao‐Cheng Thong,Yuqi Jiang,Fang‐Zhou Yao,Zhenxing Yue,Zhongtai Zhang,Zilong Tang,Jing‐Feng Li,Heng Wang,Till Frömling,Ke Wang
标识
DOI:10.1002/anie.202216776
摘要
Recent advances in perovskite ferroelectrics have fostered a host of exciting sensors and actuators. Defect engineering provides critical control of the performance of ferroelectric materials, especially lead-free ones. However, it remains a challenge to quantitatively study the concentration of defects due to the complexity of measurement techniques. Here, a feasible approach to analyzing the A-site defect and electron in alkali metal niobate is demonstrated. The theoretical relationships among defect concentration, conductivity, and oxygen partial pressure can be established based on the defect chemistry equilibria. The type and concentration of defects are reflected through the conductivity variation with oxygen partial pressure. As a result, the variation of defect concentration gives rise to defect-driven interfacial polarization, which further leads to distinct properties of the ceramics. e.g., abnormal dielectric behavior. Furthermore, this study also suggests a strategy to manipulate defects and charges in perovskite oxides for performance optimization.
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