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Breath figure micromolding approach for regulating the microstructures of polymeric films for triboelectric nanogenerators

机译:呼吸图微成型方法,用于调节摩擦电纳米发电机聚合物膜的微观结构

摘要

A triboelectric nanogenerator (TENG) is an innovative kind of energy harvester recently developed on the basis of organic materials for converting mechanical energy into electricity through the combined use of the triboelectric effect and electrostatic induction. Polymeric materials and their microstructures play key roles in the generation, accumulation, and retainment of triboelectric charges, which decisively determines the final electric performance of TENGs. Herein we report a simple and efficient breath figure (BF) micromolding approach to rapidly regulate the surface microstructures of polymeric films for the assembly of TENGs. Honeycomb porous films with adjustable pore size and dimensional architectures were first prepared by the BF technique through simply adjusting the concentration of the polymer solution. They were then used as negative molds for straightforward synthesis of polydimethylsiloxane (PDMS) films with different microlens arrays (MLAs) and lens sizes, which were further assembled for TENGs to investigate the influence of film microstructures. All MLA-based TENGs were found to have an obviously enhanced electric performance in comparison with a flat-PDMS-film-based TENG. Specifically, up to 3 times improvement in the electric performance can be achieved by the MLA-based TENG with optimal surface microstructures over flat-PDMS-film-based TENG under the same triggering conditions. A MLA-based TENG was further successfully used to harvest the waste mechanical energy generated by different human body motions, including finger tapping, hand clapping, and walking with a frequency ranging from 0.5 to 5.5 Hz.
机译:摩擦电纳米发电机(TENG)是最近开发的一种创新的能量收集器,其基于有机材料,通过摩擦电效应和静电感应的结合将机械能转化为电能。聚合物材料及其微结构在摩擦电荷的产生,积累和保留中起着关键作用,这决定了TENG的最终电性能。本文中,我们报告了一种简单而有效的呼吸图(BF)微成型方法,用于快速调节TENGs组装的聚合物薄膜的表面微观结构。首先通过BF技术通过简单地调节聚合物溶液的浓度来制备孔径和尺寸结构可调的蜂窝状多孔膜。然后将它们用作底模,以直接合成具有不同微透镜阵列(MLA)和透镜尺寸的聚二甲基硅氧烷(PDMS)膜,将其进一步组装用于TENG,以研究膜微结构的影响。与基于平面PDMS薄膜的TENG相比,所有基于MLA的TENG均具有明显增强的电性能。具体而言,在相同的触发条件下,具有最佳表面微观结构的基于MLA的TENG可以比基于PDMS的平面TENG的TENG达到高达3倍的电气性能提高。基于MLA的TENG进一步成功地用于收集由不同的人体运动(包括轻拍,拍手和以0.5到5.5 Hz的频率行走)产生的废机械能。

著录项

  • 作者

    Gong J; Xu B; Tao X;

  • 作者单位
  • 年度 2017
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  • 原文格式 PDF
  • 正文语种 eng
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