4.7 Article

Hierarchical Honeycomb-Structured Electret/Triboelectric Nanogenerator for Biomechanical and Morphing Wing Energy Harvesting

Journal

NANO-MICRO LETTERS
Volume 13, Issue 1, Pages -

Publisher

SHANGHAI JIAO TONG UNIV PRESS
DOI: 10.1007/s40820-021-00644-0

Keywords

Honeycomb-inspired structure; Morphing wing energy harvesting; Electret power generation; Triboelectric nanogenerator; Self-powered insole pressure mapping

Funding

  1. National Natural Science Foundation of China [51705429, 61801525]
  2. Fundamental Research Funds for the Central Universities, Guangdong Natural Science Funds Grant [2018A030313400]
  3. Space Science and Technology Foundation
  4. 111 Project, UK [B13044]
  5. Engineering and Physical Sciences Research Council (EPSRC) [EP/P018998/1]
  6. Newton Mobility Grant through Royal Society [IE161019]

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The hierarchical honeycomb-inspired triboelectric nanogenerator (h-TENG) proposed in this study demonstrates remarkable energy harvesting capabilities for biomechanical and UAV applications. With a peak power density of 0.275 mW cm(-3) (or 2.48 mW g(-1)), the h-TENG shows potential for real-world applications in areas such as insole pressure mapping and UAV wing energy conversion.
Flexible, compact, lightweight and sustainable power sources are indispensable for modern wearable and personal electronics and small-unmanned aerial vehicles (UAVs). Hierarchical honeycomb has the unique merits of compact mesostructures, excellent energy absorption properties and considerable weight to strength ratios. Herein, a honeycomb-inspired triboelectric nanogenerator (h-TENG) is proposed for biomechanical and UAV morphing wing energy harvesting based on contact triboelectrification wavy surface of cellular honeycomb structure. The wavy surface comprises a multilayered thin film structure (combining polyethylene terephthalate, silver nanowires and fluorinated ethylene propylene) fabricated through high-temperature thermoplastic molding and wafer-level bonding process. With superior synchronization of large amounts of energy generation units with honeycomb cells, the manufactured h-TENG prototype produces the maximum instantaneous open-circuit voltage, short-circuit current and output power of 1207 V, 68.5 mu A and 12.4 mW, respectively, corresponding to a remarkable peak power density of 0.275 mW cm(-3) (or 2.48 mW g(-1)) under hand pressing excitations. Attributed to the excellent elastic property of self-rebounding honeycomb structure, the flexible and transparent h-TENG can be easily pressed, bent and integrated into shoes for real-time insole plantar pressure mapping. The lightweight and compact h-TENG is further installed into a morphing wing of small UAVs for efficiently converting the flapping energy of ailerons into electricity for the first time. This research demonstrates this new conceptualizing single h-TENG device's versatility and viability for broad-range real-world application scenarios.

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