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High dielectric constant 0-3 ceramic-polymer composites.

机译:高介电常数0-3陶瓷-聚合物复合材料。

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摘要

0-3 ceramic-polymer composites using both nano-size and micro-size CaCu3Ti4O12 ceramic particles were studied.;The micro-size ceramic particles were prepared from the CaCu3Ti 4O12 pellets by milling. The CaCu3Ti4O 12 ceramics were prepared using conventional solid-state reaction under different conditions, such as molding pressure, milling media and time, and calcination temperature and time. Based on the analysis of the dielectric spectrum, it was found that the dielectric responses of CaCu3Ti 4O12 ceramics are determined by three different processes. The effect of thickness of the ceramics on the dielectric properties was observed and studied. Although the dielectric response at low frequency increases with decreasing thickness, the dielectric behavior for the high frequency relaxation process is weakly dependent on thickness.;0-3 composites with different concentrations (0-50 vo% CaCu3Ti 4O12 ceramics) were prepared using solution casting. However, a clear polymer-rich layer was found in as-cast film due to the poor wettability between ceramic and polymer matrix. The HP was used to modify the morphology of the composites. Different configurations were studied for the HP process. Composites with a dielectric constant of 510 at 1 kHz were obtained in 50vol% CaCu3Ti4O12 composite with CC HP at room temperature. It was found that the relaxation time of the major relaxation process obtained in the composite changes with processing condition, such as annealing, HP and concentration. It indicates that the interfacial layers between ceramic particles and polymer matrix play an important role on the dielectric response of the composite. As for the HP samples, it was interestingly observed that as HP time changes, there is a critical HP time at which the composite exhibits a much higher dielectric constant. Based on the dielectric spectrum of the composites at different temperatures, it was concluded that the loss of the composites at low frequency is controlled by a relaxation process.;For the CaCu3Ti4O12/P(VDF-TrFE) composite, the dielectric response is strongly dependent on temperature due to the fact that the dielectric constant of P(VDF-TrFE) is strongly dependent of temperature. However, as for the CaCu3Ti4O12/P(VDF-CTFE) composites, the dielectric constant of the composite is almost independent of temperature and the composite has a small loss. For example, composites with a dielectric constant of 151 and loss of 0.14 at 1 kHz were obtained at room temperature. A clear difference between nano-size and micro-size CaCu 3Ti4O12 composite was observed. Moreover, It was also found that the difference of dielectric constant between nano-size and micro-size particles in P(VDF-CTFE) copolymer is much smaller than that in P(VDF-TrFE) copolymer.
机译:研究了同时使用纳米级和微米级CaCu3Ti4O12陶瓷颗粒的0-3陶瓷-聚合物复合材料。;通过研磨由CaCu3Ti 4O12球团制备了微米级陶瓷颗粒。 CaCu3Ti4O 12陶瓷是在不同的条件下,例如模压,研磨介质和时间以及煅烧温度和时间,使用常规的固态反应制备的。通过对介电谱的分析,发现CaCu3Ti 4O12陶瓷的介电响应是通过三种不同的方法确定的。观察并研究了陶瓷厚度对介电性能的影响。尽管随着厚度的减小,低频下的介电响应会增加,但高频弛豫过程的介电性能几乎不受厚度影响。;采用溶液浇铸法制备了不同浓度的0-3复合材料(0-50 vo%CaCu3Ti 4O12陶瓷)。 。但是,由于陶瓷和聚合物基体之间的润湿性差,在铸态膜中发现了一层透明的富含聚合物的层。 HP被用来改变复合材料的形态。针对HP过程研究了不同的配置。在室温下,在CCvol为50vol%的CaCu3Ti4O12复合材料中,获得了在1 kHz时介电常数为510的复合材料。发现在复合材料中获得的主要弛豫过程的弛豫时间随诸如退火,HP和浓度的加工条件而变化。这表明陶瓷颗粒和聚合物基体之间的界面层对复合材料的介电响应起着重要作用。对于HP样品,有趣的是,随着HP时间的变化,在关键的HP时间,复合材料的介电常数要高得多。根据不同温度下复合材料的介电谱,可以得出结论,复合材料在低频下的损耗是通过弛豫过程来控制的。对于CaCu3Ti4O12 / P(VD​​F-TrFE)复合材料,介电响应与温度的依赖性很大。由于P(VDF-TrFE)的介电常数与温度密切相关,因此温度变化很大。但是,对于CaCu 3 Ti 4 O 12 / P(VD​​F-CTFE)复合材料,其介电常数几乎与温度无关,并且复合材料的损耗小。例如,在室温下获得介电常数为151,在1 kHz时损耗为0.14的复合材料。观察到纳米尺寸和微米尺寸的CaCu 3Ti4O12复合材料之间存在明显差异。此外,还发现,P(VDF-CTFE)共聚物中的纳米级和微米级颗粒之间的介电常数差异远小于P(VDF-TrFE)共聚物中的介电常数。

著录项

  • 作者

    Shan, Xiaobing.;

  • 作者单位

    Auburn University.;

  • 授予单位 Auburn University.;
  • 学科 Engineering Chemical.;Engineering Mechanical.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 327 p.
  • 总页数 327
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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