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Ultra-robust triboelectric nanogenerator for harvesting rotary mechanical energy

机译:超坚固的摩擦电纳米发电机,用于收集旋​​转机械能

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摘要

Triboelectric nanogenerators (TENGs) for harvesting rotary mechanical energy are mostly based on in-plane sliding or free-standing mode. However, the relative displacement between two contacting triboelectric layers causes abrasion, which lowers the output power and reduces service life. Therefore, it is important to develop a method to minimize abrasion when harvesting rotary mechanical energy. Here, we report a scale-like structured TENG (SL-TENG), in which two triboelectric layers work under a contact-separation mode to avoid in-plane relative sliding in order to minimize abrasion. As a result, the SL-TENG exhibits outstanding robustness. For example, the output voltage of the SL-TENG does not exhibit any measurable decay although this output has been continuously generated through more than a million cycles. Moreover, at a very low rotation rate of 120 rpm, the SL-TENG can generate a maximum short-circuit current of 78 μA, delivering an instantaneous power density of 2.54 W/m2 to an external load. In relation to this, a Li-ion battery was charged using the SL-TENG. After a 30-min charging time, the battery achieved a discharge capacity of 0.1 mAh. Through a power management circuit integrated into the SL-TENG, a continuous direct current (DC) of 5 V is outputted, providing sufficient DC power for driving a radio-frequency wireless sensor and other conventional electronics.
机译:用于收集旋​​转机械能的摩擦电纳米发电机(TENGs)主要基于平面内滑动或独立式模式。但是,两个接触摩擦电层之间的相对位移会导致磨损,从而降低输出功率并缩短使用寿命。因此,重要的是开发一种在收获旋转机械能时使磨损最小化的方法。在这里,我们报告了一种类似鳞片状的结构化TENG(SL-TENG),其中两个摩擦电层在接触分离模式下工作,以避免面内相对滑动,以最大程度地减少磨损。结果,SL-TENG具有出色的耐用性。例如,SL-TENG的输出电压没有显示出任何可测量的衰减,尽管该输出已经连续产生了超过一百万个周期。此外,SL-TENG在120 rpm的极低转速下可以产生78μA的最大短路电流,从而向外部负载提供2.54 W / m2的瞬时功率密度。与此相关,使用SL-TENG为锂离子电池充电。充电30分钟后,电池的放电容量为0.1 mAh。通过集成到SL-TENG中的电源管理电路,可以输出5 V的连续直流(DC),从而提供足够的DC电源来驱动射频无线传感器和其他常规电子设备。

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  • 来源
    《纳米研究(英文版)》 |2018年第5期|2862-2871|共10页
  • 作者单位

    Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, National Center for Nanoscience and Technology (NCNST), Beijing 100083, China;

    Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, National Center for Nanoscience and Technology (NCNST), Beijing 100083, China;

    School of Material Science and Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332-0245, USA;

    University of Chinese Academy of Sciences, Beijing 100049, China;

    Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, National Center for Nanoscience and Technology (NCNST), Beijing 100083, China;

    Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, National Center for Nanoscience and Technology (NCNST), Beijing 100083, China;

    School of Materials Science & Engineering, Beijing Institute of Fashion Technology, Beijing 100029, China;

    School of Materials Science & Engineering, Beijing Institute of Fashion Technology, Beijing 100029, China;

    Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, National Center for Nanoscience and Technology (NCNST), Beijing 100083, China;

    University of Chinese Academy of Sciences, Beijing 100049, China;

    Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, National Center for Nanoscience and Technology (NCNST), Beijing 100083, China;

    University of Chinese Academy of Sciences, Beijing 100049, China;

    Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, National Center for Nanoscience and Technology (NCNST), Beijing 100083, China;

    University of Chinese Academy of Sciences, Beijing 100049, China;

    School of Materials Science & Engineering, Beijing Institute of Fashion Technology, Beijing 100029, China;

    School of Materials Science & Engineering, Beijing Institute of Fashion Technology, Beijing 100029, China;

  • 收录信息 中国科学引文数据库(CSCD);中国科技论文与引文数据库(CSTPCD);
  • 原文格式 PDF
  • 正文语种 eng
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