4.6 Article

Improvement in the output performance of polyethylene oxide-based triboelectric nanogenerators by introducing core-shell Ag@SiO2 particles

Journal

JOURNAL OF MATERIALS CHEMISTRY C
Volume 10, Issue 1, Pages 265-273

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1tc04831g

Keywords

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Funding

  1. Sichuan Science and Technology Program [2020YFH0042]
  2. State Key Laboratory of Polymer Materials Engineering of Sichuan University [sklpme2019-2-16]

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This work presents a feasible and cost-effective solution for the preparation of environmentally friendly and sustainable TENGs by utilizing micron-sized core-shell Ag@SiO2 particles to increase effective contact area and dielectric properties. The TENGs achieved high output power density and stable flexibility, providing a novel approach for their application in wearable-flexible electronic devices. The water solubility of PEO material allowed for sustainable utilization of TENGs with significant output performance retention.
The development of self-powered technology in nano-energy puts forward higher requirements for triboelectric nanogenerators (TENGs), in which it is necessary to further improve their output performance to broaden their scope of application, and environmentally friendly and sustainable development needs to be realized as well by the recycling of friction materials. The preparation of environmentally friendly and sustainable TENGs is reported in this work through a feasible and cost-effective solution casting method, in which polyethylene oxide (PEO) and Ecoflex were utilized as positive/negative friction materials, respectively. With introducing micron-sized core-shell Ag@SiO2 particles into the PEO matrix, micro-nano structures were constructed to increase the effective contact area, while the enhancement of dielectric properties was also achieved in the meantime. The Ag@SiO2-PEO/Ecoflex TENG with optimum particle content of 50 wt% produced a short-circuit current of 10 mu A, an open-circuit voltage of 95 V, and a transfer charges of 35 nC at a frequency of 3 Hz. The maximum output power density of Ag@SiO2-PEO-50 wt%/Ecoflex TENG up to 1.5 W m(-2) was reached under different load resistances. The stability and flexibility of TENGs were verified as well, which led to a novel approach for their application in wearable-flexible electronic devices. Additionally, the sustainable utilization of TENGs was achieved as a result of the water solubility of the PEO material, with significant output performance retention. This work provides an innovative approach for the further modification of the output performance of flexible and sustainable TENGs.

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