3D double-faced interlock fabric triboelectric nanogenerator for bio-motion energy harvesting and as self-powered stretching and 3D tactile sensors

被引:262
作者
Chen, Chaoyu [1 ,2 ]
Chen, Lijun [1 ,2 ]
Wu, Zhiyi [1 ]
Guo, Hengyu [1 ]
Yu, Weidong [2 ]
Du, Zhaoqun [2 ]
Wang, Zhong Lin [1 ,3 ]
机构
[1] Georgia Inst Technol, Sch Mat Sci & Engn, Atlanta, GA 30332 USA
[2] Donghua Univ, Key Lab Text Sci & Technol, Minist Educ, Coll Text, Shanghai 201620, Peoples R China
[3] Chinese Acad Sci, Beijing Inst Nanoenergy & Nanosyst, Beijing 100083, Peoples R China
关键词
BIOMECHANICAL ENERGY; TECHNOLOGY; PROGRESS;
D O I
10.1016/j.mattod.2019.10.025
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Combining triboelectric nanogenerator (TENG) and textile materials, wearable electronic devices show great application prospects in biomotion energy harvesting and multifunctional self-power sensors in this coming intelligent era. However, fabrication method by rigidly stitching two or more individual fabrics together and working mode that must cooperate with external materials, make textile-based TENG bulky, stiff, uncomfortable and hinder their range of application. Here, by using a double needle bed flat knitting machine technology, a 3D double faced interlock fabric TENG (3DFIF-TENG) is designed as self-powered, stretchable and substrate-free wearable TENG sensors (such as a bending sensor to detect arm bending degree, pressure sensors) and energy harvesting devices. Besides, due to the unique 3D structure and after improving the structure by knitting a woven fabric-TENG in the middle layer, the 3DFIF-TENG can be further used as a multifunctional sensors, such as a 3D tactile sensor. Besides, by knitting a woven fabric-TENG in the middle layer of the 3DFIF-TENG, it can be further used as a multifunctional sensor, such as a 3D tactile sensor. The substrate-free and 3D structure design in this paper may provide a promising direction for self-powered, stretchable wearable devices in energy harvesting, human motion or robot movement detection, and smart prosthetics.
引用
收藏
页码:84 / 93
页数:10
相关论文
共 44 条
  • [1] Integrated Multi layered Triboelectric Nanogenerator for Harvesting Biomechanical Energy from Human Motions
    Bai, Peng
    Zhu, Guang
    Lin, Zong-Hong
    Jing, Qingshen
    Chen, Jun
    Zhang, Gong
    Ma, Jusheng
    Wang, Zhong Lin
    [J]. ACS NANO, 2013, 7 (04) : 3713 - 3719
  • [2] Chen C., 2016, TEXT RES J
  • [3] Chen C., 2017, TEXT RES J
  • [4] Corrugated Textile based Triboelectric Generator for Wearable Energy Harvesting
    Choi, A. Young
    Lee, Chang Jun
    Park, Jiwon
    Kim, Dogyun
    Kim, Youn Tae
    [J]. SCIENTIFIC REPORTS, 2017, 7
  • [5] Choi W., 2005, J TEXTILE APPAREL TE, V4, P1
  • [6] A Stretchable Yarn Embedded Triboelectric Nanogenerator as Electronic Skin for Biomechanical Energy Harvesting and Multifunctional Pressure Sensing
    Dong, Kai
    Wu, Zhiyi
    Deng, Jianan
    Wang, Aurelia C.
    Zou, Haiyang
    Chen, Chaoyu
    Hu, Dongmei
    Gu, Bohong
    Sun, Baozhong
    Wang, Zhong Lin
    [J]. ADVANCED MATERIALS, 2018, 30 (43)
  • [7] 3D Orthogonal Woven Triboelectric Nanogenerator for Effective Biomechanical Energy Harvesting and as Self-Powered Active Motion Sensors
    Dong, Kai
    Deng, Jianan
    Zi, Yunlong
    Wang, Yi-Cheng
    Xu, Cheng
    Zou, Haiyang
    Ding, Wenbo
    Dai, Yejing
    Gu, Bohong
    Sun, Baozhong
    Wang, Zhong Lin
    [J]. ADVANCED MATERIALS, 2017, 29 (38)
  • [8] A Highly Stretchable and Washable All-Yarn-Based Self-Charging Knitting Power Textile Composed of Fiber Triboelectric Nanogenerators and Supercapacitors
    Dong, Kai
    Wang, Yi-Cheng
    Deng, Jianan
    Dai, Yejing
    Zhang, Steven L.
    Zou, Haiyang
    Gu, Bohong
    Sun, Baozhong
    Wang, Zhong Lin
    [J]. ACS NANO, 2017, 11 (09) : 9490 - 9499
  • [9] A study of spherical compression properties of knitted spacer fabrics Part I: Theoretical analysis
    Du, Zhaoqun
    Hu, Hong
    [J]. TEXTILE RESEARCH JOURNAL, 2012, 82 (15) : 1569 - 1578
  • [10] Flexible triboelectric generator!
    Fan, Feng-Ru
    Tian, Zhong-Qun
    Wang, Zhong Lin
    [J]. NANO ENERGY, 2012, 1 (02) : 328 - 334