Open Access
Ferroelectret energy harvesting with 3D‐printed air‐spaced cantilever design
Author(s) -
Ben Dali Omar,
von Seggern Heinz,
Sessler Gerhard Martin,
Pondrom Perceval,
Zhukov Sergey,
Zhang Xiaoqing,
Kupnik Mario
Publication year - 2022
Publication title -
nano select
Language(s) - English
Resource type - Journals
ISSN - 2688-4011
DOI - 10.1002/nano.202100210
Subject(s) - cantilever , energy harvesting , piezoelectricity , acoustics , acceleration , power (physics) , materials science , work (physics) , proof mass , energy (signal processing) , resonance (particle physics) , structural engineering , vibration , physics , engineering , composite material , mechanical engineering , classical mechanics , atomic physics , quantum mechanics
Abstract Vibrational energy harvesters of air‐spaced cantilever design, utilizing ferroelectrets as the electroactive element, are a very recent concept. Such systems, based on thed 31 $d_{31}$ piezoelectric effect are further studied with harvesters of improved design, partially implemented by additive manufacturing. The focus of the present work is on the dependence of frequency response, resonance frequency, and generated power on the distance of the ferroelectret from the cantilever beam and on the pre‐stressing of the ferroelectret. Experimental data are compared with both analytical and numerical evaluations. It is found that the power generated can be increased by one to two orders of magnitude by proper choice of distance. A suitable pre‐stress yields another increase of power by a factor of 2 to 10 and linearizes the response.Thus, normalized output powers more than 1000 μ $\umu$ W referred to an acceleration of 9.81 ms2 $^2$ and a seismic mass of 3.5 g, can be achieved, which significantly exceeds previous results of cantilever‐based energy harvesters.