Nanomaterials and System Lab, Department of Mechatronics Engineering, Jeju National University , Jeju 690-756, Republic of Korea.
ACS Appl Mater Interfaces. 2014 Aug 27;6(16):13716-23. doi: 10.1021/am5031648. Epub 2014 Aug 6.
In this study, we developed an innovative, flexible, organic-inorganic hybrid composite nanogenerator, which was used to drive a self-powered microwire-based pH sensor. The hybrid composite nanogenerator was fabricated using ZnO nanowire and piezoelectric polymer poly(vinylidene fluoride), through a simple, inexpensive solution-casting technique. The fabricated hybrid composite nanogenerator delivered a maximum open-circuit voltage of 6.9 V and a short-circuit current of 0.96 μA, with an output power of 6.624 μW under uniaxial compression. This high-performance, electric poling free composite nanogenerator opens up the possibility of industrial-scale fabrication. The hybrid nanogenerator demonstrated its ability to drive five green LEDs simultaneously, without using an energy-storage device. Additionally, we constructed a self-powered pH sensor, using a ZnO microwire powered with our hybrid nanogenerator. The output voltage varied according to changes in the pH level. This study demonstrates the feasibility of using a hybrid nanogenerator as a self-powered device that can be extended for use as a biosensor for environmental monitoring and/or as a smart, wearable, vibration sensor in future applications.
在这项研究中,我们开发了一种创新的、灵活的有机-无机混合复合纳米发电机,用于驱动基于微丝的自供电 pH 传感器。该混合复合纳米发电机是通过简单、廉价的溶液浇铸技术,使用氧化锌纳米线和压电聚合物聚(偏二氟乙烯)制造的。所制造的混合复合纳米发电机在单向压缩下提供了 6.9 V 的最大开路电压和 0.96 μA 的短路电流,输出功率为 6.624 μW。这种高性能、无需电极化的复合纳米发电机为工业规模制造开辟了可能性。该混合纳米发电机展示了能够同时驱动五个绿色发光二极管的能力,而无需使用储能装置。此外,我们使用我们的混合纳米发电机为 ZnO 微丝供电,构建了一个自供电 pH 传感器。输出电压根据 pH 值的变化而变化。这项研究证明了使用混合纳米发电机作为自供电设备的可行性,该设备可扩展用于环境监测的生物传感器,以及未来应用中的智能、可穿戴、振动传感器。