Investigation of contact electrification based broadband energy harvesting mechanism using elastic PDMS microstructures

被引:59
作者
Dhakar, Lokesh [1 ]
Tay, F. E. H. [2 ,3 ]
Lee, Chengkuo [1 ]
机构
[1] Natl Univ Singapore, Dept Elect & Comp Engn, Singapore 117576, Singapore
[2] NUS Grad Sch Integrat Sci & Engn, Singapore, Singapore
[3] Natl Univ Singapore, Dept Mech Engn, Singapore 117576, Singapore
关键词
broadband; contact electrification; triboelectric energy harvester; micropatterns; TRIBOELECTRIC-GENERATOR; ELECTROMAGNETIC GENERATOR; POWER OUTPUT; NANOGENERATORS; FREQUENCIES; SYSTEMS; DEVICES; MOTION; SENSOR;
D O I
10.1088/0960-1317/24/10/104002
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Triboelectric energy harvesting has recently garnered a lot of interest because of its easy fabrication and high power output. Contact electrification depends on the chemical properties of contacting materials. Another important factor in contact electrification mechanism is surfaces' elastic and topographical characteristics. One of the biggest limitations of resonant mechanism based devices is their narrow operating bandwidth. This paper presents a broadband mechanism which utilizes stiffness induced in the cantilever motion due to contact between two triboelectric surfaces. We have conducted experiments using polydimethylsiloxane (PDMS) micropad patterns to study the effect of micropad array configuration on the performance of triboelectric energy harvesting devices. The maximum power output measured from the device was observed to be 0.69 mu W at an acceleration of 1 g. Due to the non-linearity introduced by contact separation mechanism, the bandwidth of the triboelectric energy harvester was observed to be increased by 63% at an acceleration level of 1 g. A hybrid energy harvesting mechanism has also been demonstrated by compounding the triboelectric energy harvester with a piezoelectric bimorph.
引用
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页数:10
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共 40 条
[21]   Energy harvesting from human and machine motion for wireless electronic devices [J].
Mitcheson, Paul D. ;
Yeatman, Eric M. ;
Rao, G. Kondala ;
Holmes, Andrew S. ;
Green, Tim C. .
PROCEEDINGS OF THE IEEE, 2008, 96 (09) :1457-1486
[22]   Nonlinear Springs for Bandwidth-Tolerant Vibration Energy Harvesting [J].
Nguyen, Son D. ;
Halvorsen, Einar .
JOURNAL OF MICROELECTROMECHANICAL SYSTEMS, 2011, 20 (06) :1225-1227
[23]   Theoretical study of contact-mode triboelectric nanogenerators as an effective power source [J].
Niu, Simiao ;
Wang, Sihong ;
Lin, Long ;
Liu, Ying ;
Zhou, Yu Sheng ;
Hu, Youfan ;
Wang, Zhong Lin .
ENERGY & ENVIRONMENTAL SCIENCE, 2013, 6 (12) :3576-3583
[24]   Adaptive piezoelectric energy harvesting circuit for wireless remote power supply [J].
Ottman, GK ;
Hofmann, HF ;
Bhatt, AC ;
Lesieutre, GA .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2002, 17 (05) :669-676
[25]   Energy scavenging for mobile and wireless electronics [J].
Paradiso, JA ;
Starner, T .
IEEE PERVASIVE COMPUTING, 2005, 4 (01) :18-27
[26]   Triboelectric series and charging properties of plastics using the designed vertical-reciprocation charger [J].
Park, Chul Hyun ;
Park, Jai Koo ;
Jeon, Ho Seok ;
Chun, Byoung Chul .
JOURNAL OF ELECTROSTATICS, 2008, 66 (11-12) :578-583
[27]   Electromagnetic generator for harvesting energy from human motion [J].
Saha, C. R. ;
O'Donnell, T. ;
Wang, N. ;
McCloskey, R. .
SENSORS AND ACTUATORS A-PHYSICAL, 2008, 147 (01) :248-253
[28]   Experimental Duffing oscillator for broadband piezoelectric energy harvesting [J].
Sebald, Gael ;
Kuwano, Hiroki ;
Guyomar, Daniel ;
Ducharne, Benjamin .
SMART MATERIALS AND STRUCTURES, 2011, 20 (10)
[29]   Analysis of power output for piezoelectric energy harvesting systems [J].
Shu, Y. C. ;
Lien, I. C. .
SMART MATERIALS AND STRUCTURES, 2006, 15 (06) :1499-1512
[30]   A wideband vibration-based energy harvester [J].
Soliman, M. S. M. ;
Abdel-Rahman, E. M. ;
El-Saadany, E. F. ;
Mansour, R. R. .
JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2008, 18 (11)