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首页> 外文期刊>Advanced Materials >Charge Trapping-Based Electricity Generator (CTEG): An Ultrarobust and High Efficiency Nanogenerator for Energy Harvesting from Water Droplets
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Charge Trapping-Based Electricity Generator (CTEG): An Ultrarobust and High Efficiency Nanogenerator for Energy Harvesting from Water Droplets

机译:基于电荷俘获的电力发电机(CTEG):超细和高效率纳米液,用于水滴的能量收获

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摘要

Strategies toward harvesting energy from water movements are proposed in recent years. Reverse electrowetting allows high efficiency energy generation, but requires external electric field. Triboelectric nanogenerators, as passive energy harvesting devices, are limited by the unstable and low density of tribo-charges. Here, a charge trapping-based electricity generator (CTEG) is proposed for passive energy harvesting from water droplets with high efficiency. The hydrophobic fluoropolymer films utilized in CTEG are pre-charged by a homogeneous electrowetting-assisted charge injection (h-EWCI) method, allowing an ultrahigh negative charge density of 1.8 mC m(-2). By utilizing a dedicated designed circuit to connect the bottom electrode and top electrode of a Pt wire, instantaneous currents beyond 2 mA, power density above 160 W m(-2), and energy harvesting efficiency over 11% are achieved from continuously falling water droplets. CTEG devices show excellent robustness for energy harvesting from water drops, without appreciable degradation for intermittent testing during 100 days. These results exceed previously reported values by far. The approach is not only applicable for energy harvesting from water droplets or wave-like oscillatory fluid motion, but also opens up avenues toward other applications requiring passive electric responses, such as diverse sensors and wearable devices.
机译:近年来提出了对水流收获能量的策略。反向电润湿允许高效的能量产生,但需要外部电场。摩擦电纳米能器作为被动能量收集装置,受到摩擦收费不稳定和低密度的限制。这里,提出了一种基于电荷俘获的电力发生器(CTEG),用于高效率的水滴中的被动能量收获。 CTEG中使用的疏水含氟聚合物膜通过均匀的电润湿辅助电荷注入(H-EWCI)方法预充电,允许超高的负电荷密度为1.8mc m(-2)。通过利用专用设计电路来连接PT线的底部电极和顶部电极,超过2 mA的瞬时电流,功率密度高于160W(-2),并且通过连续下降的水滴实现超过11%的能量收集效率。 CTEG器件表现出从水滴中的能量收集的优异稳健性,而在100天期间不明显降解间歇性测试。这些结果超出了先前报告的价值。该方法不仅适用于水滴或波浪状振荡流体运动的能量,而且还向其他需要被动电响应的应用开辟了途径,例如不同的传感器和可穿戴设备。

著录项

  • 来源
    《Advanced Materials 》 |2020年第33期| 2001699.1-2001699.7| 共7页
  • 作者单位

    South China Normal Univ South China Acad Adv Optoelect Guangdong Prov Key Lab Opt Informat Mat & Technol Guangzhou 510006 Peoples R China|South China Normal Univ South China Acad Adv Optoelect Inst Elect Paper Displays Guangzhou 510006 Peoples R China|South China Normal Univ Natl Ctr Int Res Green Optoelect Guangzhou 510006 Peoples R China|Univ Twente MESA Inst Nanotechnol Fac Sci & Technol Phys Complex Fluids NL-7500 AE Enschede Netherlands;

    Univ Twente MESA Inst Nanotechnol Fac Sci & Technol Phys Complex Fluids NL-7500 AE Enschede Netherlands;

    Univ Twente MESA Inst Nanotechnol Fac Sci & Technol Phys Complex Fluids NL-7500 AE Enschede Netherlands;

    South China Normal Univ Natl Ctr Int Res Green Optoelect Guangzhou 510006 Peoples R China;

    South China Normal Univ South China Acad Adv Optoelect Guangdong Prov Key Lab Opt Informat Mat & Technol Guangzhou 510006 Peoples R China|South China Normal Univ South China Acad Adv Optoelect Inst Elect Paper Displays Guangzhou 510006 Peoples R China|South China Normal Univ Natl Ctr Int Res Green Optoelect Guangzhou 510006 Peoples R China|Acad Shenzhen Guohua Optoelect Shenzhen 518110 Peoples R China;

    Univ Twente MESA Inst Nanotechnol Fac Sci & Technol Phys Complex Fluids NL-7500 AE Enschede Netherlands;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    droplets; energy harvesting; nano-generators; surface charges; water energy;

    机译:液滴;能量收集;纳米发电机;表面收费;水能;

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