突破了聚氧化物中介电电容性的极限:极极二极变异使无形的热电聚合物成为可能
Patrick M Danner1,2, Thulasinath Raman Venkatesan1, Johannes von Szczepanski1,2
1Swiss Federal Laboratories for Materials Science and Technology - Empa Laboratory for Functional Polymers, Ueberlandstr. 129, Duebendorf, CH-8600, Switzerland. dorina.opris@empa.ch.
Materials horizons
|May 2, 2025
概括
研究人员开发了新的聚氧,在无形弹性体中实现了创纪录的高介电电容率. 这些材料为先进的软电应用和火电设备提供了有前途的途径.
科学领域:
- 材料科学 材料科学 材料科学
- 聚合物化学 聚合物化学
- 电气工程 电气工程
背景情况:
- 聚合物通常具有较低的介电电容,限制了它们在软电应用中的使用.
- 使用有机双极的化学修饰是一种已知的增强聚合物介电电容性的方法.
研究的目的:
- 为了确定改性聚合物中最大可实现的介电电容.
- 开发具有增强介电和热电性能的新型聚氧.
主要方法:
- 合成了四种新型的多氧.
- 在室温和高温下测量相对导电率.
- 用SiO2和TiO2进行复合材料的表征,包括用于玻璃过渡的差分扫描热量计 (DSC).
- 测量热电系数的方法.
主要成果:
- 在室温下达到23至31的相对导电性,在40°C时达到34度,这是无形无填充物弹性体中最高的.
- 来自设计具有最佳弹性和允许性的弹性体的指导原则.
- 由于界面和散装阶段,在复合材料中观察到两种不同的玻璃过渡.
- 证明了用于火电应用的不同阶段的有用介电行为.
- 报告了无结晶,无形聚合物的最高火电,其系数为3.4μC m-2 K-1.1.
结论:
- 新型聚氧为无形弹性体提供了前所未有的介电电容量.
- 开发的材料和设计原则对于软电和火电应用非常有价值.
- 复合材料的不同相位行为使得定制的火电特性成为可能.
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