Simulation of high-output and lightweight sliding-mode triboelectric nanogenerators

被引:25
作者
Khorsand, Mohammad [1 ]
Tavakoli, Javad [1 ]
Kamanya, Kudzai [1 ]
Tang, Youhong [1 ]
机构
[1] Flinders Univ S Australia, Coll Sci & Engn, Inst NanoScale Sci & Technol, Bedford Pk, SA 5042, Australia
关键词
Nanoenergy; Energy harvesting; Sliding triboelectric nanogenerators; Optimality system; Augmented power output; Miniaturization; CONTACT ELECTRIFICATION; ENERGY; SEPARATION; CHARGE; PRESSURE; SYSTEMS;
D O I
10.1016/j.nanoen.2019.104115
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
In light of the rapid growth in microelectronic technology, triboelectric nanogenerators (TENGs) have been exploited as securely sustainable substitutes for energy scavenging purposes as well as self-powered sensory utilization. In essence, TENGs' energy output and average power distribution depend highly on certain key parameters including contact area, the thickness of electric films and external resistance. This study attempts to predict the behavior of TENGs based on variation of those key parameters and tries to optimize the associated characteristics leading to high-output and light-weight sliding-mode TENGs. To meet this problem, an artificial intelligence approach is taken into consideration and solutions for load resistance and geometry are presented. Furthermore, an experimental setup is designed to evaluate the accuracy of the simulation results, demonstrating the precision of the applied theory. The results revealed that the predefined sliding-mode TENG can harvest 0.25 mJ at each cycle in an open-circuit condition where the weight is almost 42.91 g. Moreover, simulation proves that an appropriate value for the external resistor can increase the scavenged energy up to 3.65 mJ at each reciprocal movement. Finally, temporal responses for charge, current, voltage, power output, and harvested energy are plotted and discussed, facilitating understanding of the relationship between scavenged energy and optimized parameters.
引用
收藏
页数:15
相关论文
共 49 条
[31]  
Schein L.B., 1996, Electrophotography and Development Physics, V2nd
[32]   Contact De-electrification of Electrostatically Charged Polymers [J].
Soh, Siowling ;
Kwok, Sen Wai ;
Liu, Helena ;
Whitesides, George M. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2012, 134 (49) :20151-20159
[33]   Ultra-Flexible and Large-Area Textile-Based Triboelectric Nanogenerators with a Sandpaper-Induced Surface Microstructure [J].
Song, Jian ;
Gao, Libo ;
Tao, Xiaoming ;
Li, Lixiao .
MATERIALS, 2018, 11 (11)
[34]   Fully Enclosed Cylindrical Single-Electrode-Based Triboelectric Nanogenerator [J].
Su, Yuanjie ;
Yang, Ya ;
Zhong, Xiandai ;
Zhang, Hulin ;
Wu, Zhiming ;
Jiang, Yadong ;
Wang, Zhong Lin .
ACS APPLIED MATERIALS & INTERFACES, 2014, 6 (01) :553-559
[35]   Effect of humidity and pressure on the triboelectric nanogenerator [J].
Vu Nguyen ;
Yang, Rusen .
NANO ENERGY, 2013, 2 (05) :604-608
[36]   Elasto-Aerodynamics-Driven Triboelectric Nanogenerator for Scavenging Air-Flow Energy [J].
Wang, Shuhua ;
Mu, Xiaojing ;
Wang, Xue ;
Gu, Alex Yuandong ;
Wang, Zhong Lin ;
Yang, Ya .
ACS NANO, 2015, 9 (10) :9554-9563
[37]   Sliding-Triboelectric Nanogenerators Based on In-Plane Charge-Separation Mechanism [J].
Wang, Sihong ;
Lin, Long ;
Xie, Yannan ;
Jing, Qingshen ;
Niu, Simiao ;
Wang, Zhong Lin .
NANO LETTERS, 2013, 13 (05) :2226-2233
[38]   Progress in triboelectric nanogenerators as a new energy technology and self-powered sensors [J].
Wang, Zhong Lin ;
Chen, Jun ;
Lin, Long .
ENERGY & ENVIRONMENTAL SCIENCE, 2015, 8 (08) :2250-2282
[39]   Triboelectric Nanogenerators as New Energy Technology for Self-Powered Systems and as Active Mechanical and Chemical Sensors [J].
Wang, Zhong Lin .
ACS NANO, 2013, 7 (11) :9533-9557
[40]   Progress in nanogenerators for portable electronics [J].
Wang, Zhong Lin ;
Zhu, Guang ;
Yang, Ya ;
Wang, Sihong ;
Pan, Caofeng .
MATERIALS TODAY, 2012, 15 (12) :532-543