吉林大学学报(理学版) ›› 2025, Vol. 63 ›› Issue (2): 622-0628.

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Na+和Bi3+非化学计量比对Na0.5+xBi0.5-xTi0.99Mg0.01O3-δ结构和电学性能的影响#br#

李润, 孔明慧, 郭翠婷, 朱沛, 杨强, 王德军   

  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:2024-06-14 出版日期:2025-03-26 发布日期:2025-03-26
  • 通讯作者: 王德军 E-mail:wangdj@ccu.edu.cn

Effect of Non-stoichiometric Ratio of Na+ and Bi3+ on Structure and Electrical Properties of Na0.5+xBi0.5-xTi0.99Mg0.01O3-δ

LI Run, KONG Minghui, GUO Cuiting, ZHU Pei, YANG Qiang, WANG Dejun   

  1. Key Laboratory of Material Design and Quantum Simulation, College of Materials Science and Engineering, Changchun University, Changchun 130022, China
  • Received:2024-06-14 Online:2025-03-26 Published:2025-03-26

摘要: 在保持A位元素Na+Bi总量恒定(x(Na)+x(Bi)=1)和掺杂Mg摩尔分数不变的条件下, 通过调整Na和Bi摩尔分数, 研究Na+和Bi3+非化学计量比对Na0.5+xBi0.5-xTi0.99Mg0.01O3-δ微观结构和电学特性的影响. 通过固相法合成Na和Bi不同摩尔分数的样品, 利用X射线衍射(XRD)和扫描电子显微镜(SEM)对其结构和微观形貌进行表征, 并通过电化学测试评估其电学性能. 结果表明: 改变Na和Bi的摩尔分数可显著影响样品的晶粒尺寸和电导率; 当x=0.02时, 样品具有最优的晶粒和晶界电导率性能. 因此, 通过控制Na和Bi的摩尔分数可有效调节材料的电学性能, 为高性能氧离子导体的开发提供实验指导.

关键词: 非化学计量比, 氧离子导体, 空间电荷势, 电导率

Abstract: We studied the effect of non-stoichiometric ratio of Na+ and Bi3+ on the microstructure and electrical properties of Na0.5+xBi0.5-xTi0.99Mg0.01O3-δ by adjusting the mole fractions of Na and Bi under the condition of maintaining constant total amount of A-site elements (x(Na)+x(Bi)=1) and  constant mole fraction of Mg doping. Samples of Na and Bi with different mole fractions were synthesized by using sodid-state method, and their structures and microstructures were characterized by X-ray diffraction (XRD) and scanning electron microscopy (SEM). The electrochemical properties were evaluated by electrochemical testing. The results show that changing the mole fraction of Na and Bi can significatly affect the grain size and conductivity of the simple. The sample exhibits optimal grain and grain-boundary conductivity performance when x=0.02. Therefore, controlling the mole fraction of Na and Bi can effectively modulate the electrical performance of materials, providing experimental guidance for the development of high-performance oxygen ionic conductors.

Key words: non-stoichiometric ratio, oxygen ionic conductor, space charge potential, conductivity

中图分类号: 

  • TB39