Home /Research /A highly shape-adaptive, stretchable design based on conductive liquid for energy harvesting and self-powered biomechanical monitoring
OTHER

A highly shape-adaptive, stretchable design based on conductive liquid for energy harvesting and self-powered biomechanical monitoring

Yi Fang, Xiaofeng Wang, Simiao Niu, Shengming Li, Yajiang Yin, Keren Dai, Guangjie Zhang, Long Lin, Zhen Wen, Hengyu Guo, Jie Wang, Min‐Hsin Yeh, Yunlong Zi, Qingliang Liao, Zheng You, Yue Zhang, Zhong Lin Wang

Year
2016
Citations
328
Access
Open access

Abstract

The rapid growth of deformable and stretchable electronics calls for a deformable and stretchable power source. We report a scalable approach for energy harvesters and self-powered sensors that can be highly deformable and stretchable. With conductive liquid contained in a polymer cover, a shape-adaptive triboelectric nanogenerator (saTENG) unit can effectively harvest energy in various working modes. The saTENG can maintain its performance under a strain of as large as 300%. The saTENG is so flexible that it can be conformed to any three-dimensional and curvilinear surface. We demonstrate applications of the saTENG as a wearable power source and self-powered sensor to monitor biomechanical motion. A bracelet-like saTENG worn on the wrist can light up more than 80 light-emitting diodes. Owing to the highly scalable manufacturing process, the saTENG can be easily applied for large-area energy harvesting. In addition, the saTENG can be extended to extract energy from mechanical motion using flowing water as the electrode. This approach provides a new prospect for deformable and stretchable power sources, as well as self-powered sensors, and has potential applications in various areas such as robotics, biomechanics, physiology, kinesiology, and entertainment.

Keywords

Energy harvestingElectrical conductorEnergy (signal processing)Computer scienceNanotechnologyMaterials sciencePhysicsComposite material

Related papers

Browse all OTHER papers