A New Protocol Toward High Output TENG with Polyimide as Charge Storage Layer

被引:140
作者
Feng, Yange [1 ,2 ]
Zheng, Youbin [1 ]
Zhang, Ga [1 ]
Wang, Daoai [1 ]
Zhou, Feng [1 ]
Liu, Weimin [1 ]
机构
[1] Chinese Acad Sci, Lanzhou Inst Chem Phys, State Key Lab Solid Lubricat, Lanzhou 730000, Peoples R China
[2] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
关键词
Triboelectric nanogenerator; Transition layer; Charge retention; Spin-Coating; PERFORMANCE TRIBOELECTRIC NANOGENERATOR; ELECTROCHEMICAL CATHODIC PROTECTION; HARVESTING MECHANICAL ENERGY; SURFACE FUNCTIONALIZATION; CONVERSION EFFICIENCY; WIND ENERGY; WATER; GENERATOR; ELECTRIFICATION; ELECTRONICS;
D O I
10.1016/j.nanoen.2017.06.017
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
A new structured triboelectric nanogenerators (TENG) was designed by by adding a transition layer between the friction layer and the conduct layer, which could significantly improve the output performance by one order of magnitude. The material of transition layer, such as polyimide, has high ability to store the triboelectrification charges, resulting in more induced charges and higher external current. After adding a polyimide charge storage layer with the thickness of 25 mu m, the short-circuit current and output voltage of polyvinylidene fluoride (PVDF) and nylon (NY) based TENG (Cu-PI-PVDF@NY-Cu) increased from 9.2 mu A to 65 mu A, and 110V to 1010 V, respectively. The maximum charge density can reach approximately 105 mu C/m(2) with the maximum value of the output power of 5.87 mW under 4 M Omega loading resistance, which can instantaneous light up 992 commercial LEDs and charge a capacitor with the speed increased by 10 times. Moreover, the mechanism and influence factors including the surface structure, composition and thickness of the charge keeping layer to enhance the output of TENGs were discussed in detail. The charge decay tests of the transition layers showed that polyimide layer has very good charge keeping ability with a decay rate of only about 20 % in 4 h, while the charge of PVDF decrease about 97 % in 4 h, which is a key factor for its lower output. Graphical Abstract A new protocol toward high output triboelectric nanogenerator was introduced by adding a transition layer as the charge storage layer. Due to the charge retention property, the TENG with PI charge storage layer obtains a high short-circuit current and output voltage values of 65 mu A and 1010 V, respectively. This study gives some guidance for choosing materials as charge storage layer to improve the output of TENGs, which paves a route to drive the practical applications of TENGs in energy harvesting, self-powered sensors, and so on. [GRAPHICS] .
引用
收藏
页码:467 / 476
页数:27
相关论文
共 42 条
  • [31] Grating-Structured Freestanding Triboelectric-Layer Nanogenerator for Harvesting Mechanical Energy at 85% Total Conversion Efficiency
    Xie, Yannan
    Wang, Sihong
    Niu, Simiao
    Lin, Long
    Jing, Qingshen
    Yang, Jin
    Wu, Zhengyun
    Wang, Zhong Lin
    [J]. ADVANCED MATERIALS, 2014, 26 (38) : 6599 - 6607
  • [32] Triboelectric Nanogenerator for Harvesting Wind Energy and as Self-Powered Wind Vector Sensor System
    Yang, Ya
    Zhu, Guang
    Zhang, Hulin
    Chen, Jun
    Zhong, Xiandai
    Lin, Zong-Hong
    Su, Yuanjie
    Bai, Peng
    Wen, Xiaonan
    Wang, Zhong Lin
    [J]. ACS NANO, 2013, 7 (10) : 9461 - 9468
  • [33] Theoretical Comparison, Equivalent Transformation, and Conjunction Operations of Electromagnetic Induction Generator and Triboelectric Nanogenerator for Harvesting Mechanical Energy
    Zhang, Chi
    Tang, Wei
    Han, Changbao
    Fan, Fengru
    Wang, Zhong Lin
    [J]. ADVANCED MATERIALS, 2014, 26 (22) : 3580 - 3591
  • [34] Lawn Structured Triboelectric Nanogenerators for Scavenging Sweeping Wind Energy on Rooftops
    Zhang, Lei
    Zhang, Binbin
    Chen, Jun
    Jin, Long
    Deng, Weili
    Tang, Junfeng
    Zhang, Haitao
    Pan, Hong
    Zhu, Minhao
    Yang, Weiqing
    Wang, Zhong Lin
    [J]. ADVANCED MATERIALS, 2016, 28 (08) : 1650 - 1656
  • [35] A hybrid fibers based wearable fabric piezoelectric nanogenerator for energy harvesting application
    Zhang, Min
    Gao, Tao
    Wang, Jianshu
    Liao, Jianjun
    Qiu, Yingqiang
    Yang, Quan
    Xue, Hao
    Shi, Zhan
    Zhao, Yang
    Xiong, Zhaoxian
    Chen, Lifu
    [J]. NANO ENERGY, 2015, 13 : 298 - 305
  • [36] Liquid-solid contact triboelectrification and its use in self-powered nanosensor for detecting organics in water
    Zhang, Xiaolong
    Zheng, Youbin
    Wang, Daoai
    Rahman, Zia Ur
    Zhou, Feng
    [J]. NANO ENERGY, 2016, 30 : 321 - 329
  • [37] Fiber-Based Generator for Wearable Electronics and Mobile Medication
    Zhong, Junwen
    Zhang, Yan
    Zhong, Qize
    Hu, Qiyi
    Hu, Bin
    Wang, Zhong Lin
    Zhou, Jun
    [J]. ACS NANO, 2014, 8 (06) : 6273 - 6280
  • [38] Triboelectric nanogenerators as a new energy technology: From fundamentals, devices, to applications
    Zhu, Guang
    Peng, Bai
    Chen, Jun
    Jing, Qingshen
    Wang, Zhong Lin
    [J]. NANO ENERGY, 2015, 14 : 126 - 138
  • [39] A Shape-Adaptive Thin-Film-Based Approach for 50% High-Efficiency Energy Generation Through Micro-Grating Sliding Electrification
    Zhu, Guang
    Zhou, Yu Sheng
    Bai, Peng
    Meng, Xian Song
    Jing, Qingshen
    Chen, Jun
    Wang, Zhong Lin
    [J]. ADVANCED MATERIALS, 2014, 26 (23) : 3788 - 3796
  • [40] Self-powered metal surface anti-corrosion protection using energy harvested from rain drops and wind
    Zhu, Hua Rui
    Tang, Wei
    Gao, Cai Zhen
    Han, Yu
    Li, Tao
    Cao, Xia
    Wang, Zhong Lin
    [J]. NANO ENERGY, 2015, 14 : 193 - 200