Enhanced electrostatic vibrational energy harvesting using integrated opposite-charged electrets

Kai Tao, Jin Wu, Lihua Tang, Liangxing Hu, Sun Who Lye, Jianmin Miao

Research output: Contribution to journalArticlepeer-review

62 Scopus citations

Abstract

This paper presents a sandwich-structured MEMS electret-based vibrational energy harvester (e-VEH) that has two opposite-charged electrets integrated into a single electrostatic device. Compared to the conventional two-plate configuration where the maximum charge can only be induced when the movable mass reaches its lowest position, the proposed harvester is capable of creating maximum charge induction at both the highest and the lowest extremes, leading to an enhanced output performance. As a proof of concept, an out-of-plane MEMS e-VEH device with an overall volume of about 0.24 cm3 is designed, modeled, fabricated and characterized. A holistic equivalent circuit model incorporating the mechanical dynamic model and two capacitive circuits has been established to study the charge circulations. With the fabricated prototype, the experimental analysis demonstrates the superior performance of the proposed sandwiched e-VEH: the output voltage increases by 80.9% and 18.6% at an acceleration of 5 m s-2 compared to the top electret alone and bottom electret alone configurations, respectively. The experimental results also confirm the waveform derivation with the increase of excitation, which is in good agreement with the circuit simulation results. The proposed sandwiched e-VEH topology provides an effective and convenient methodology for improving the performance of electrostatic energy harvesting devices.

Original languageEnglish
Article number044002
JournalJournal of Micromechanics and Microengineering
Volume27
Issue number4
DOIs
StatePublished - 2 Mar 2017

Keywords

  • electrostatic/electrets
  • opposite-charged
  • sandwich-structured
  • vibrational energy harvesting

Fingerprint

Dive into the research topics of 'Enhanced electrostatic vibrational energy harvesting using integrated opposite-charged electrets'. Together they form a unique fingerprint.

Cite this