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Three-dimensional piezoelectric polymer microsystems for vibrational energy harvesting, robotic interfaces and biomedical implants

Authors :
Mengdi Han
Zheng Yan
Xinlong Wang
Haibo Li
Banu Akar
Guillermo A. Ameer
Haiwen Luan
Yiyuan Yang
Yihui Zhang
Wubin Bai
John A. Rogers
Jaeman Lim
Heling Wang
Cunman Liang
Irawati Kandela
Hangbo Zhao
Yeguang Xue
Yonggang Huang
Source :
Nature Electronics. 2:26-35
Publication Year :
2019
Publisher :
Springer Science and Business Media LLC, 2019.

Abstract

Piezoelectric microsystems are of use in areas such as mechanical sensing, energy conversion and robotics. The systems typically have a planar structure, but transforming them into complex three-dimensional (3D) frameworks could enhance and extend their various modes of operation. Here, we report a controlled, nonlinear buckling process to convert lithographically defined two-dimensional patterns of electrodes and thin films of piezoelectric polymers into sophisticated 3D piezoelectric microsystems. To illustrate the engineering versatility of the approach, we create more than twenty different 3D geometries. With these structures, we then demonstrate applications in energy harvesting with tailored mechanical properties and root-mean-square voltages ranging from 2 mV to 790 mV, in multifunctional sensors for robotic prosthetic interfaces with improved responsivity (for example, anisotropic responses and sensitivity of 60 mV N−1 for normal force), and in bio-integrated devices with in vivo operational capabilities. The 3D geometries, especially those with ultralow stiffnesses or asymmetric layouts, yield unique mechanical attributes and levels of functionality that would be difficult or impossible to achieve with conventional two-dimensional designs. Nonlinear buckling processes can be used to transform thin films of piezoelectric polymers into sophisticated 3D piezoelectric microsystems with applications in energy harvesting, multifunctional sensing and bio-integrated devices.

Details

ISSN :
25201131
Volume :
2
Database :
OpenAIRE
Journal :
Nature Electronics
Accession number :
edsair.doi...........d8a5247b337c478ae06ae1640e15017a
Full Text :
https://doi.org/10.1038/s41928-018-0189-7