An origami structure triboelectric nanogenerator based on PVDF/BaTiO3 3 for muscle strain monitoring in running sports

被引:7
作者
Cai, Jun [1 ]
Zhang, Zhongxing [2 ]
机构
[1] Anhui Univ Chinese Med, Dept Phys Educ, Hefei 230012, Peoples R China
[2] Anhui Med Univ, Sch Humanist Med, Dept Phys Educ, Hefei, Anhui, Peoples R China
关键词
Triboelectric nanogenerators (TENGs); PVDF/BaTiO3; Self-powered sensor; Muscle strain; Smart sports; ENERGY;
D O I
10.1016/j.cap.2024.03.013
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Wearable sensing devices for monitoring human muscle health have received much attention. Triboelectric nanogenerator (TENG), which is renewable, sustainable, and green, will promote the development of wearable electronic devices. However, there is still room for development in the material and structural design of wearable TENGs. In this work, we proposed a polyvinylidene difluoride (PVDF) film doped with BaTiO3, 3 , named PVDF/ BaTiO3, 3 , for triboelectric nanogenerator (PB-TENG) fabrication. The PVDF/BaTiO3 3 film has a unique surface micro-structure of porous scales and a fluffy 3D network architecture, which is beneficial for enhancing triboelectric efficiency. The cross-elastic origami architecture of PB-TENG brings high stability and recoverable mechanical properties to PB-TENG devices. According to the results, the maximum output power of PB-TENG can reach 2.15 mW with a load of 25 M Omega. The transferred charge (Qsc) Q sc ) of PB-TENG can arrive at 541 nC. Besides, the PB-TENG can act as a self-powered sensor for muscle strain diagnosis and monitoring. This research provides a new path for intelligent sports development.
引用
收藏
页码:61 / 67
页数:7
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[1]   How Comparable Are Sodium-Ion Batteries to Lithium-Ion Counterparts? [J].
Abraham, K. M. .
ACS ENERGY LETTERS, 2020, 5 (11) :3544-3547
[2]   Highly Conductive, Scalable, and Machine Washable Graphene-Based E-Textiles for Multifunctional Wearable Electronic Applications [J].
Afroj, Shaila ;
Tan, Sirui ;
Abdelkader, Amr M. ;
Novoselov, Kostya S. ;
Karim, Nazmul .
ADVANCED FUNCTIONAL MATERIALS, 2020, 30 (23)
[3]   Integrated Multi layered Triboelectric Nanogenerator for Harvesting Biomechanical Energy from Human Motions [J].
Bai, Peng ;
Zhu, Guang ;
Lin, Zong-Hong ;
Jing, Qingshen ;
Chen, Jun ;
Zhang, Gong ;
Ma, Jusheng ;
Wang, Zhong Lin .
ACS NANO, 2013, 7 (04) :3713-3719
[4]   High-performance triboelectric nanogenerators for self-powered, in-situ and real-time water quality mapping [J].
Bai, Yu ;
Xu, Liang ;
He, Chuan ;
Zhu, Laipan ;
Yang, Xiaodan ;
Jiang, Tao ;
Nie, Jinhui ;
Zhong, Wei ;
Wang, Zhong Lin .
NANO ENERGY, 2019, 66
[5]   Advances on Emerging Materials for Flexible Supercapacitors: Current Trends and Beyond [J].
Benzigar, Mercy R. ;
Dasireddy, Venkata D. B. C. ;
Guan, Xinwei ;
Wu, Tom ;
Liu, Guozhen .
ADVANCED FUNCTIONAL MATERIALS, 2020, 30 (40)
[6]   Scavenging Wind Energy by Triboelectric Nanogenerators [J].
Chen, Bo ;
Yang, Ya ;
Wang, Zhong Lin .
ADVANCED ENERGY MATERIALS, 2018, 8 (10)
[7]  
Gao Y., 2023, Material. Design
[8]   High-Performance Liquid Crystalline Polymer for Intrinsic Fire-Resistant and Flexible Triboelectric Nanogenerators [J].
Guan, Qingbao ;
Lu, Xiao ;
Chen, Yuyao ;
Zhang, Haiyang ;
Zheng, Yaxuan ;
Neisiany, Rasoul Esmaeely ;
You, Zhengwei .
ADVANCED MATERIALS, 2022, 34 (34)
[9]   Theoretical model and optimal output of a cylindrical triboelectric nanogenerator [J].
Guo, Xin ;
Shao, Jiajia ;
Willatzen, Morten ;
Yang, Yi ;
Wang, Zhong Lin .
NANO ENERGY, 2022, 92
[10]   Comparative study on the contact-separation mode triboelectric nanogenerator [J].
Hasan, Saima ;
Kouzani, Abbas Z. ;
Adams, Scott ;
Long, John ;
Mahmud, M. A. Parvez .
JOURNAL OF ELECTROSTATICS, 2022, 116