吉林大学学报(理学版) ›› 2025, Vol. 63 ›› Issue (4): 1185-1191.

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解析Li+和Sr2+共掺杂对氧离子导体Na0.52Bi0.48Ti0.99Mg0.01O3-δ电化学性能的影响

孔明慧,  李润, 朱沛, 郭翠婷, 杨强, 刘润茹   

  1. 长春大学 材料科学与工程学院材料设计与量子模拟重点实验室, 长春 130022
  • 收稿日期:2024-06-28 出版日期:2025-07-26 发布日期:2025-07-26
  • 通讯作者: 刘润茹 E-mail:runruliu@sina.com

Analyzing Effect of Li+ and Sr2+ Co-doping on Electrochemical Performance of Oxygen Ion Conductor Na0.52Bi0.48Ti0.99Mg0.01O3-δ

KONG Minghui, LI Run, ZHU Pei, GUO Cuiting, YANG Qiang, LIU Runru   

  1. Key Laboratory of Material Design and Quantum Simulation, College of Materials Science and Engineering, Changchun University, Changchun 130022, China
  • Received:2024-06-28 Online:2025-07-26 Published:2025-07-26

摘要: 用X射线衍射(XRD)、扫描电子显微镜(SEM)、Raman光谱和交流阻抗谱表征1 000 ℃烧结温度制备的Na0.52Bi0.48-2xLixSrxTi0.99Mg0.01O3-δ(x=0,0.005,0.010,0.015)多晶氧离子导体, 研究Li+和Sr2+共掺杂浓度对该系列样品晶体结构、微观形貌和电化学性能的影响. 结果表明, 随着Li+和Sr2+共掺杂浓度的增加, 所有样品均未出现明显杂质峰, 晶胞参数和晶胞体积随掺杂浓度的增加先减小后增大; 当x=0.010时, 晶粒的电导率达到最大值, 约为未掺杂样品电导率的2倍; 当x=0.010时, 样品的表观晶界电导率与宏观晶界电导率达到最佳值, 优于其他掺杂样品.

关键词: 钙钛矿结构, 固相法, 氧离子导体, 电导率, 共掺杂

Abstract: We characterized Na0.52Bi0.48-2xLixSrxTi0.99Mg0.01O3-δ(x=0,0.005,0.010,0.015) polycrystalline oxygen ion conductors prepared at a sintering temperature of 1 000 ℃ by using X-ray diffraction (XRD), scanning electron microscopy (SEM), Raman spectrum, and AC impedance spectroscopy to study the effect of the co-doping concentration of Li+ and Sr2+ on the crystal structure, microstructure and electrochemical properties of the series of the samples. The results show that with increase of co-doping concentration of Li+ and Sr2+, no obvious impurity peaks were observed in all samples, and the unit cell parameters and unit cell volumes first decreases and then increases with the increase of doping concentration. When x=0.010, the grain conductivity reaches its maximum value, which is about twice that of the undoped sample. When x=0.010, the apparent grain-boundary conductivity and the macroscopic grain-boundary conductivity of the sample reach their optimal values, which are superior to other doped samples.

Key words: perovskite structure, solid-state method, oxygen ion conductor, conductivity, co-doping

中图分类号: 

  • TB39