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Integration of organic/inorganic nanostructured materials in a hybrid nanogenerator enables efficacious energy harvesting via mutual performance enhancement

机译:有机/无机纳米结构材料在杂交纳米液中的整合能够通过相互性能增强来实现有效的能量收获

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Recent reports demonstrate that hybrid energy harvesting devices can efficiently convert ubiquitously available but mostly unexploited ambient energies (e.g., mechanical, chemical, thermal, solar) into usable power that can potentially support a new generation of self-powered electronic systems. In this paper, we present a hybrid organic/inorganic nanogenerator on shim substrates, which integrates both piezoelectric and triboelectric components based on inorganic p-n junction ZnO nanostructures and nanostructured organic polytetrafluoroethylene (PTFE) film, respectively. In this design, individual components can be operated independently or concurrently. Moreover, when operated concurrently, component performance is mutually enhanced, enabling more efficient conversion of mechanical energy into electrical energy in a single press-and-release cycle. When triggered with 25 Hz frequency and 1 G acceleration of external force, the piezoelectric nanogenerator (PENG) component generates a peak-to-peak output voltage of 34.8 V, which is similar to 3 times higher than its output when it acts alone. Similarly, the triboelectric nanogenerator (TENG) component generates a peak-to-peak output voltage of 356 V under the same conditions, which is higher than its initial output of 280 V when acting alone. The nanogenerator unit produces an average peak output voltage of 186 V, current density of 10.02 mu A/cm(2), and average peak power density of 1.864 mW/cm(2) when operated in the hybrid configuration. The device can even produce an average peak-to-peak voltage of similar to 160 V from normal hand movement when placed under a wristband fitness tracker, and similar to 580 V from human walking when placed within the walker's shoe. The device has been demonstrated to charge commercial capacitors up to a few volts within several seconds.
机译:最近的报告表明,混合能量收集装置可以有效地将普遍存在的可用,但主要是未爆发的环境能量(例如,机械,化学,热,太阳能)的可用电力,可以潜在地支持新一代的自动电子系统。在本文中,我们在垫片基材上呈现杂化有机/无机纳米料,其基于无机P-N结ZnO纳米结构和纳米结构有机聚四氟乙烯(PTFE)膜整合。在这种设计中,各个组件可以独立地或同时操作。此外,当同时操作时,相互增强部件性能,使机械能在单个压力和释放循环中更有效地将机械能转换成电能。当用25 Hz频率触发和外力加速度1g时,压电纳米液(彭)组分产生34.8V的峰值输出电压,而当其单独作用时,其与输出高3倍。类似地,摩擦电纳米电磁器(Teng)组分在同一条件下产生356V的峰值到峰值输出电压,其单独行动时高于其初始输出280V。纳米电磁器单元产生186V,电流密度为10.02μA/ cm(2)的平均峰值输出电压,并且在混合配置中操作时的平均峰值功率密度为1.864mW / cm(2)。当放置在腕带健身跟踪器下方时,该装置甚至可以产生与正常手动相似的平均峰值到峰值电压,并且当放置在助行器的鞋内时,从人行道上类似于人行道的580V。已经证明该装置在几秒钟内将商业电容器充电至几伏。

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