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      A flexible semitransparent dual-electrode hydrogel based triboelectric nanogenerator with tough interfacial bonding and high energy output

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          Abstract

          A flexible semitransparent dual-electrode hydrogel based TENG with tough interfacial bonding and high output was developed.

          Abstract

          Triboelectric Nanogenerators (TENGs), as a novel tool that is capable of harnessing ubiquitous mechanical energy, have gained tremendous attention in recent years. Developing flexible and transparent TENGs with high triboelectric output performance is a major challenge towards adaptable and invisible energy harvesters. Previously developed transparent TENGs are normally used in a single electrode working mode or have relatively low output. Herein, a flexible semitransparent dual-electrode hydrogel-based TENG (DH-TENG) with high output was developed. The DH-TENG contains a thermoplastic polyurethane (TPU) tribopositive layer and a polydimethylsiloxane (PDMS) tribonegative layer. Both materials are highly transparent. NaCl containing polyacrylamide (PAM) hydrogels were used as electrodes, and polyethylene terephthalate (PET) sheets were used to provide mechanical stiffness. A benzophenone (BP) grafting method was used to enhance the interfacial bonding between hydrophobic triboelectric materials and hydrophilic hydrogels, which realized a significant improvement in tear strength of over 12 times. The DH-TENG demonstrated a high instant voltage and current of 311.5 V and 32.4 μA respectively. A maximum power density of 2.7 W m −2 was achieved on a 4.7 MΩ resistor. Furthermore, the DH-TENG showed a highly stable output under continuous running and demonstrated the capability to charge capacitors and power small electronics such as a timer, pedometer, and digital watch.

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          Author and article information

          Contributors
          Journal
          JMCCCX
          Journal of Materials Chemistry C
          J. Mater. Chem. C
          Royal Society of Chemistry (RSC)
          2050-7526
          2050-7534
          May 7 2020
          2020
          : 8
          : 17
          : 5752-5760
          Affiliations
          [1 ]Key Laboratory of Advanced Packaging Materials and Technology of Hunan Province
          [2 ]Hunan University of Technology
          [3 ]Zhuzhou
          [4 ]China
          [5 ]Department of Building and Real Estate
          [6 ]Hong Kong Polytechnic University
          [7 ]Key Laboratory of Materials Processing and Mold
          [8 ]Institute of Textile and Clothing, Hong Kong Polytechnic University
          [9 ]Zhengzhou University
          [10 ]Zhengzhou
          Article
          10.1039/C9TC06937B
          1587b564-3a96-4c4a-b930-b5c0205528b6
          © 2020

          http://rsc.li/journals-terms-of-use

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