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一种具有持久静电效应和抗恶劣环境能力的柔性驻极体薄膜,可用于能量收集。

A Flexible Electret Membrane with Persistent Electrostatic Effect and Resistance to Harsh Environment for Energy Harvesting.

机构信息

Lab. of Electret and Its Application, Hangzhou Dianzi University, Hangzhou, 310018, China.

出版信息

Sci Rep. 2017 Aug 16;7(1):8443. doi: 10.1038/s41598-017-07747-y.

Abstract

A novel flexible electret membrane, exhibiting persistent electrostatic effect, distinctive temperature stability and outstanding capability of resistance to harsh environment and fatigue, is demonstrated by experiment. Its excellent electret performance is correlated to the synergy of three factors, which are space charge injection, dipole orientation and interfacial polarization according to the analysis of charge storage mechanism. This electret membrane is provided with sandwich configuration PTFE/THV/PTFE, prepared by hot pressing method and thermal charging technology. After wiped its surface with alcohol, its surface potential declines to zero from -550 V, then recovers rapidly to -310 V and finally maintains constant for 800 hours, which shows that its electret performance distinctly precedes traditional electret material such as single PTFE, FEP electret membrane. The measurement of thermal stimulating potentials displays that its surface potential reaches maximum about 5 times initial value at 125 °C. A micro-vibration energy harvester is assembled with this membrane. Its maximum output power reaches 4.66 μW at tapping frequency 5 Hz and keeps stable during over 2000 tapping tests within 100 days, which indicates the long-life service and resistance to harsh environment and fatigue of this electret membrane.

摘要

实验证明了一种新型的柔性驻极体膜,它具有持久的静电效应、独特的温度稳定性以及出色的抗恶劣环境和疲劳能力。根据电荷存储机制的分析,其优异的驻极体性能与三个因素的协同作用有关,即空间电荷注入、偶极定向和界面极化。这种驻极体膜采用三明治结构 PTFE/THV/PTFE,通过热压法和热充电技术制备而成。用酒精擦拭其表面后,其表面电位从-550V 降至 0,然后迅速恢复到-310V,并在 800 小时内保持恒定,这表明其驻极体性能明显优于传统驻极体材料,如单一的 PTFE、FEP 驻极体膜。热刺激电位的测量显示,其表面电位在 125°C 时达到初始值的约 5 倍最大值。用这种膜组装了一个微振动能量收集器。在敲击频率为 5Hz 时,其最大输出功率达到 4.66μW,在 100 天内超过 2000 次敲击测试中保持稳定,这表明这种驻极体膜具有长寿命服务、抗恶劣环境和抗疲劳能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d063/5559523/e30a270afc92/41598_2017_7747_Fig1_HTML.jpg

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