4.8 Article

Rationally Structured Triboelectric Nanogenerator Arrays for Harvesting Water-Current Energy and Self-Powered Sensing

期刊

ADVANCED MATERIALS
卷 34, 期 39, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202205064

关键词

energy harvesting; nanogenerators; underwater; vortex-induced vibration; water-current energy

资金

  1. National Key R & D Project from Minister of Science and Technology [2021YFA1201603, 2021YFA1201601]
  2. Key Research Program of Frontier Sciences, CAS [ZDBS-LY-DQC025]
  3. National Natural Science Foundation of China [51605033, 51735001]
  4. Youth Innovation Promotion Association, CAS [2019170]

向作者/读者索取更多资源

This article demonstrates a high-performance triboelectric nanogenerator that effectively harnesses water-current energy. The researchers introduce novel structures and mechanisms to ensure efficient operation even in deep water. The flexible triboelectric surface can be attached to various surfaces or used independently for sensing and power supply, showing great potential for water-current energy utilization.
Water-current energy is an enormous and widely distributed clean energy in nature, with different scales from large ocean flow to small local turbulence. However, few effective technologies have been proposed to make use of different forms of water currents as a power source. Here, high-performance paired triboelectric nanogenerators (P-TENGs) capable of integrating massively into a thin flexible layer as a structured triboelectric surface (STS) are demonstrated for harvesting water-current energy. Novel gas packet exchange structure and rigid-flexible coupling deformation mechanism are introduced to ensure that the device can work very effectively even in deep water under high water pressure. The rationally designed TENG array in the STS enables highly efficient power take-off from the flow. Typically, the STS demonstrates a high-frequency output up to 57 Hz, largely superior to current TENG devices, and the power density is improved by over 100 times for triboelectric devices harvesting current energy. The flexible STS is capable of attaching to various surfaces or applying independently for self-powered sensing and underwater power supply, showing great potential for water-current energy utilization. Moreover, the work also initiates universal strategies to fabricate high-frequency devices under large environment pressure, which may profoundly enrich the design of TENGs.

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