4.8 Article

Study on fabric-based triboelectric nanogenerator using graphene oxide/ porous PDMS as a compound friction layer

期刊

NANO ENERGY
卷 92, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.nanoen.2021.106791

关键词

conductive fabric; graphene oxide; triboelectric nanogenerator; washability; self-powered; wireless transmission

资金

  1. Ministry of Science and Technology (MOST) of the Republic of China (Taiwan) [MOST 108-2221-E-003-013]
  2. National Taiwan Normal University (NTNU), Taiwan, ROC

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This study successfully developed a fabric-based triboelectric nanogenerator with a combination of conductive fabric and PDMS containing graphene oxide. The device demonstrated excellent performance in terms of voltage, current, and power output under different conditions, and also showed durability and washability. Additionally, it showed potential for application in developing microgenerators and wireless transmission functions.
This study combined the commercially available conductive fabric with the polydimethylsiloxane (PDMS) layer containing graphene oxide (GO) to implement a fabric-based triboelectric nanogenerator (TENG) which is characterized by a simple process, low cost, high flexibility, and high stability. The findings showed that when the TENG used GO@PDMS compound layer, and after the surface was modified by SF6 plasma, the optimal opencircuit voltage of 140.4 V and short-circuit current of 2.57 mu A were obtained. When the load resistance was 50 M omega, the maximum power was 130.5 mu W. Further testing illustrated this device to have excellent washability and tested for durability. When the TENG device was integrated with clothing and body, the action information could be obtained. This indicates that this device could be used as a posture or pressure sensor. As the TENG device can lighten up 180 green LEDs connected in series, it is suitably applied to develop microgenerators. Finally, this TENG device transmits signals to the mobile phone through a Bluetooth wireless module for a real-time display. It was proved the proposed fabric-based TENG sensor with self-powered and wireless transmission function has massive potential in future applications for use in wearable fitness trackers, E-skin of robotic arms, human-machine interfaces, and flexible touch sensors.

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