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Ko, Hyunhyub
Functional Nanomaterials & Devices Lab.
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Fully stretchable self-charging power unit with micro-supercapacitor and triboelectric nanogenerator based on oxidized single-walled carbon nanotube/polymer electrodes

Author(s)
Yang, Hye JinLee, Jae-WonSeo, Seon HeeJeong, BosuLee, ByunghakDo, Woo JongKim, Jung HoonCho, Joon YoungJo, AjeongJeong, Hee JinJeong, Seung YolKim, Guang-HoonLee, Geon-WoongShin, Young-EunKo, HyunhyubHan, Joong TarkPark, Jong Hwan
Issued Date
2021-08
DOI
10.1016/j.nanoen.2021.106083
URI
https://scholarworks.unist.ac.kr/handle/201301/53372
Fulltext
https://www.sciencedirect.com/science/article/pii/S2211285521003402?via%3Dihub
Citation
NANO ENERGY, v.86, pp.106083
Abstract
A key requirement for wearable electronics is an adequate and sustainable power source. Accordingly, a selfpowering unit that replaces rechargeable secondary batteries is a promising solution. However, to realize permanent, maintenance-free, and highly durable wearable electronics, stretchable self-powering units that can harvest and store energy should be developed. In this study, we developed a fully stretchable self-charging power unit that integrates a micro-supercapacitor and triboelectric nanogenerator using oxidized single-walled carbon nanotube/polymer electrodes. The fully stretchable micro-supercapacitor with oxidized single-walled carbon nanotube/polyvinylalcohol electrodes exhibited a double layer capacitance of 20 mF cm-2 at 0.1 mA cm-2 and improved mechanical flexibility and stretchability over 10,000 cycles of stretching tests. A stretchable, polydimethylsiloxane-based current collector employing silver nanoparticles embedded with oxidized singlewalled carbon nanotubes enabled the fully stretchable, freestanding-triboelectric-layer based nanogenerators to produce a maximum instantaneous power density of 84.4 mW m- 2 under periodic and round-trip sliding of a Nylon fabric while stretching up to 40% without significant performance degradation. Furthermore, a microsupercapacitor of fully stretchable self-charging power unit could be successfully charged by the nanogenerator from 0 to 2.2 V in 1200 s and powered commercial digital clock for approximately 10 s. These results demonstrate that stretchable polymer composites with oxidized single-walled carbon nanotubes are suitable electrodes and active materials for fully stretchable and self-powered wearable electronics.
Publisher
ELSEVIER
ISSN
2211-2855
Keyword (Author)
Oxidized single-walled carbon nanotubeMicro-supercapacitorsTriboelectric nanogeneratorsSelf-charging power unitFully stretchable wearable electronics
Keyword
ENERGYCONDUCTORSSYSTEMFABRICATIONARRAY

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