首页> 外文期刊>Journal of the European Ceramic Society >(Al3+, Nb5+) co-doped CaCu3Ti4O12: An extended approach for acceptor-donor heteroatomic substitutions to achieve high-performance giant-dielectric permittivity
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(Al3+, Nb5+) co-doped CaCu3Ti4O12: An extended approach for acceptor-donor heteroatomic substitutions to achieve high-performance giant-dielectric permittivity

机译:(Al3 +,Nb5 +)共掺杂CaCu3Ti4O12:一种延长的受体 - 供体杂原子取代的方法,以实现高性能巨电介电介电常数

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摘要

Substitution of (Al3+, Nb5+) co-dopants into TiO6 octahedral sites of CaCu3Ti4O12 ceramics, which were prepared by a solid state reaction method and sintered at 1090 degrees C for 18 h, can cause a great reduction in a low-frequency loss tangent (tan delta approximate to 0.045-0.058) compared to those of Al3+ or Nb5+ single-doped CaCu3Ti4O12. Notably, very high dielectric permittivities of 2.9 - 4.1 x 10(4) with good dielectric-temperature stability are achieved. The room-temperature grain boundary resistance (E-gb approximate to 0.37-1.17 x 10(3) Q.cm) and related conduction activation energy (E-gb 0.781-0.817 eV), as well as the non-Ohmic properties of the co-doped ceramics are greatly enhanced compared to single-doped ceramics (E-gb 10(4)-10(6) Omega cm and E-gb approximate to 0.353-0.619 eV). The results show the importance of grain boundary properties for controlling the nonlinear-electrical and giant dielectric properties of CaCu3Ti4O12 ceramics, supporting the internal barrier layer capacitor model of Schottky barriers at grain boundaries.
机译:将(Al3 +,Nb5 +)的掺杂剂取代为CaCu3Ti4O12陶瓷的TiO6八面体位点,通过固态反应方法制备,并在1090℃下烧结18小时,可以导致低频损耗切线的大大降低(与AL3 +或NB5 +单掺杂CACU3TI4O12相比,TAN DELTA近似为0.045-0.058)。值得注意的是,实现了具有良好介电 - 温度稳定性的2.9-4.1×10(4)的非常高的介电介质。室温晶界电阻(E-GB近似为0.37-1.17×10(3)Q.cm)和相关的导通激活能量(E-GB 0.781-0.817 EV)以及非欧姆特性与单掺杂陶瓷(E-GB 10(4)-10(6)ωCM和E-GB近似为0.353-0.619eV),大大增强了共掺杂陶瓷。结果表明,晶界性能控制CACU3TI4O12陶瓷的非线性电气和巨电性能的重要性,支撑晶界肖特基障碍的内部阻挡层电容器模型。

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