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第二相对钛酸钡陶瓷高介电性能的影响。

Effects of Secondary Phases on the High-Performance Colossal Permittivity in Titanium Dioxide Ceramics.

机构信息

Department of Materials Science, Sichuan University , Chengdu 610064, China.

出版信息

ACS Appl Mater Interfaces. 2018 Jan 31;10(4):3680-3688. doi: 10.1021/acsami.7b18356. Epub 2018 Jan 22.

Abstract

The intensive demands of microelectronics and energy-storage applications are driving the increasing investigations on the colossal permittivity (CP) materials. In this study, we designed a new system of Dy and Nb co-doped TiO ceramics [(DyNb)TiO] with the formation of secondary phases, and then the enhancement of overall dielectric properties (ε ∼ 5.0-6.5 × 10 and tan δ < 8%) was realized in the broad composition range of 0.5 ≤ x ≤ 5%. More importantly, effects of secondary phases on microstructure, dielectric properties, and stability were explored from the views of defect-dipoles and internal barrier layer capacitance (IBLC) effect. According to the defect-dipoles theory, the CP should mainly originate from Nb, and the Dy largely contributes to the decreased dielectric loss. Both CP and low dielectric loss were obtained for co-doping with Dy and Nb. Besides, the Dy enrichment induced the formation of secondary phases, which were regarded as the low loss unit dispersed into the ceramic matrix, and largely facilitate the decreased dielectric loss. In particular, the analysis of temperature-dependent complex impedance spectra indicated that a stronger IBLC effect caused by the increased grain boundary resistance can also contribute to the optimized CP and low dielectric loss under appropriate contents of secondary phases.

摘要

微电子学和储能应用的苛刻要求推动了对巨介电常数(CP)材料的研究不断深入。在这项研究中,我们设计了一种新的 Dy 和 Nb 共掺杂 TiO 陶瓷体系 [(DyNb)TiO],其中形成了次生相,从而在 0.5 ≤ x ≤ 5%的宽组成范围内实现了整体介电性能(ε ∼ 5.0-6.5×10 和 tan δ < 8%)的增强。更重要的是,从缺陷偶极子和内建势垒层电容(IBLC)效应的角度探讨了次生相对微结构、介电性能和稳定性的影响。根据缺陷偶极子理论,CP 主要源于 Nb,Dy 主要贡献于降低介电损耗。Dy 和 Nb 的共掺杂既获得了 CP 又降低了介电损耗。此外,Dy 富集诱导了次生相的形成,这些次生相被视为低损耗单元分散在陶瓷基质中,极大地促进了介电损耗的降低。特别是,温度相关复阻抗谱的分析表明,增加晶界电阻引起的更强的 IBLC 效应也有助于在适当的次生相含量下优化 CP 和低介电损耗。

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