Optimal Design Towards High Performance of Sandwich Flexible Piezoelectric Energy Harvesters

Author:

Li Qinlan12,Li Shuang12,Zhou Lianqiao12,Cao Xinfang12,Lan Yuqun12,Xu Xinkai12,Huang YongAn3,Chen Yuli4,Zhao Yong5,Huang Chengjun6,Wei Yanpeng7,Yang Ya8,Su Yewang92

Affiliation:

1. Chinese Academy of Sciences State Key Laboratory of Nonlinear Mechanics, Institute of Mechanics, , Beijing 100190 , China ;

2. University of Chinese Academy of Sciences School of Engineering Science, , Beijing 100049 , China

3. Huazhong University of Science and Technology State Key Laboratory of Digital Manufacturing Equipment and Technology, Flexible Electronics Research Center, , Wuhan 430074 , China

4. Institute of Solid Mechanics, Beihang University , Beijing 100191 , China

5. Beihang University Key Laboratory of Bioinspired Smart Interfacial Science and Technology of Ministry of Education, School of Chemistry, , Beijing 100191 , China

6. Chinese Academy of Sciences R&D Center of Healthcare Electronics, Institute of Microelectronics, , Beijing 100029 , China

7. Chinese Academy of Sciences Key Laboratory for Mechanics in Fluid Solid Coupling Systems, Institute of Mechanics, , Beijing 100190 , China

8. Beijing Institute of Nanoenergy and Nanosystems CAS Center for Excellence in Nanoscience, Beijing Key Laboratory of Micro-Nano, Energy and Sensor, , Chinese Academy of Sciences, Beijing 101400 , China

9. Institute of Mechanics State Key Laboratory of Nonlinear Mechanics, , Chinese Academy of Sciences, Beijing 100190 , China ;

Abstract

AbstractThe flexible piezoelectric energy harvester (FPEH), as an effective strategy for long-term power supply of implantable and wearable electronics, requires high areal output energy density, low mechanical stiffness, and high energy efficiency, simultaneously. The widely adopted sandwich FPEH, consisting of one relatively hard substrate sandwiched between two piezoelectric films, can provide a high areal output energy density, but also high mechanical stiffness and low energy efficiency due to its energy-wasting deformation of the hard substrate. Here, we propose a novel optimal soft-substrate sandwich FPEH with designs of sufficient length and optimized Young’s modulus of the substrate, which is much smaller than that of the piezoelectric film. A sandwich beam model considering both the bending and shearing of the soft substrate and the one-way coupling of the piezoelectric effect was adopted for the theoretical analysis and optimal design. The optimal soft-substrate sandwich FPEH exhibits greatly improved overall performance with a 33% increase in areal output energy density, a 51% reduction in mechanical stiffness, and a 177% increase in energy efficiency, simultaneously. Systematic theoretical analysis is performed to illustrate the mechanism and guide the optimal design. The novel optimal soft-substrate sandwich FPEH is then applied to harvesting energy from various living subjects. This optimal design can be extended to other types of mechanical energy harvesters with a similar laminated structure.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics

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