4.8 Article

Carbon nano thorn arrays based water/cold resisted nanogenerator for wind energy harvesting and speed sensing

Journal

NANO ENERGY
Volume 90, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.nanoen.2021.106571

Keywords

Carbon materials; Graphdiyne; 2D materials; TENG; Superhydrophobic

Funding

  1. National Natural Science Foundation of China [51822208, 21771187, 21790050, 21790051, 51802324]
  2. Frontier Science Research Project of the Chinese Academy of Sciences [QYZDB-SSW-JSC052]
  3. Taishan Scholars Program of Shandong Province [tsqn201812111]
  4. Institute Research Project [QIBEBT ZZBS 201809, SEI I202120]

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The study introduces a high-performance self-powered wind speed sensor with remarkable water/cold resistance, developed using M-GDY nano thorn arrays as TENG core element. The M-GDY-based TENG exhibits superhydrophobic properties, providing broad applicability in humid conditions, and stable output performance under temperatures ranging from -20 degrees C to 30 degrees C.
Triboelectric nanogenerator (TENG), coupling the contact electrification and electrostatic induction, has been proved to be a promising energy harvester due to its excellent reliability, considerable output power, high efficiency, and low cost. Herein, with the designed hydrophobic carbon material methyl-graphdiyne (M-GDY) based nano thorn arrays as TENG core element, we developed a novel high-performance self-powered wind speed sensor possessing remarkable water/cold resistance, which can stably run for a long time and be directly applied in the typical extreme environment. As the electrode composing uniformly distributed methyl groups in a twodimensional plane, M-GDY can provide a convenient path for rapid charge transfer through interfaces. By in-situ growing M-GDY with nano thorn arrays structure directly on the surface of the copper foil to provide enhanced contact area and superhydrophobic properties, such M-GDY based TENG can be realized simultaneously and induce excellent performance with a stable response and real-time voltage feedback. Significantly, the superhydrophobic properties of that M-GDY-based TENG endow it with broad applicability in humid conditions. Besides, for the unique carbon-rich structure of the M-GDY array, the M-GDY-based TENG can be well applied with stable output performance under different temperatures ranging from -20 degrees C to 30 degrees C. The specially designed TENG with GDY-based material affords us a novel TENG core material and expands self-powered devices for a specific environment.

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