Epsilon‐negative materials with lower percolation threshold derived from segregated structures

材料科学 介电常数 渗透(认知心理学) 导电体 渗流阈值 相对介电常数 电容器 渗流理论 复合材料 电导率 振荡(细胞信号) 电子 碳纳米管 光电子学 电阻率和电导率 电介质 电压 电气工程 生物 物理化学 神经科学 化学 量子力学 遗传学 工程类 物理
作者
Yuan Yuan,Pengtao Yang,Zongxiang Wang,Qifa He,Kai Sun,Runhua Fan
出处
期刊:Polymer Composites [Wiley]
被引量:9
标识
DOI:10.1002/pc.28922
摘要

Abstract Epsilon‐negative materials (ENM) at radio frequency, usually designed based on percolation theory, recently drew much attention because of their potential applications in capacitors, transistors, and antennas. However, randomly distributed conductive functional materials cannot achieve directional long‐range electron transportation within the material, resulting in decreased utilization efficiency. The morphology design of the substrate material can change the distribution state and electron transfer pathway of conductive fillers. By controlling the size of the polystyrene (PS) and the content of multi‐walled carbon nanotubes (MWCNTs), PS/MWCNTs composites with random structures and segregated structures were designed, both of which exhibited negative permittivity with increasing MWCNTs content. Further investigation revealed that negative permittivity behavior is due to the establishment of the conductive network and the plasma oscillation of free electrons. Moreover, components with segregated structures have lower percolation thresholds, as directional electron transport is achieved and conductive fillers are efficiently utilized. This work provides a new method for guiding the electron transport pathway and effectively changing the distribution state of conductive fillers in ENM. Highlights Negative permittivity is achieved by plasma oscillation at radio frequency. The segregated structure leads to a decrease in the percolation threshold. Epsilon‐negative materials have good prospects in inductive components.
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