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自然糖辅助、化学增强、高度耐用的压电有机纳米发电机,具有卓越的功率密度,可用于自供电可穿戴电子设备。

Natural Sugar-Assisted, Chemically Reinforced, Highly Durable Piezoorganic Nanogenerator with Superior Power Density for Self-Powered Wearable Electronics.

机构信息

Organic Nano-Piezoelectric Device Laboratory (ONPDL), Department of Physics , Jadavpur University , Kolkata 700032 , India.

Applied Physics and Sensor Technology , Brandenburg University of Technology Cottbus-Senftenberg , K.-Wachsmann-Allee 17 , 03046 Cottbus , Germany.

出版信息

ACS Appl Mater Interfaces. 2018 Dec 19;10(50):44018-44032. doi: 10.1021/acsami.8b15320. Epub 2018 Dec 5.

Abstract

Natural piezoelectric materials are of increasing interest, particularly for applications in biocompatible, implantable, and flexible electronic devices. In this paper, we introduce a cost-effective, easily available natural piezoelectric material, that is, sugar in the field of wearable piezoelectric nanogenerators (PNGs) where low electrical output, biocompatibility, and performance durability are still critical issues. We report on a high-performance piezoorganic nanogenerator (PONG) based on the hybridization of sugar-encapsulated polyvinylidene fluoride (PVDF) nanofiber webs (SGNFW). We explore the crucial role of single-crystal sugar having a fascinating structure along with the synergistic enhancement of piezoelectricity during nanoconfinement of sugar-interfaced macromolecular PVDF chains. As a consequence, the SGNFW-based PONG exhibits outstanding electricity generation capability (e.g., ∼100 V under 10 kPa human finger impact and maximum power density of 33 mW/m) in combination with sensitivity to abundantly available different mechanical sources (such as wind flow, vibration, personal electronics, and acoustic vibration). Consequently, it opens up suitability in multifunctional self-powered wearable sensor designs for realistic implementation. In addition, commercially available capacitors are charged up effectively by the PONG because of its rapid energy storage capability. The high performance of the PONG not only offers "battery-free" energy generation (several portable units of light-emitting diodes and a liquid crystal display screen are powered up without using external storage) but also promises its use in wireless signal transmitting systems, which widens the potential in personal health care monitoring. Furthermore, owing to the geometrical stress confinement effect, the PONG is proven to be a highly durable power-generating device validated by stability test over 10 weeks. Therefore, the organic nanogenerator would be a convenient solution for portable personal electronic devices that are expected to operate in a self-powered manner.

摘要

天然压电材料越来越受到关注,特别是在生物相容性、可植入和柔性电子设备等应用领域。本文介绍了一种经济高效、易于获得的天然压电材料,即糖,用于可穿戴压电纳米发电机 (PNG) 领域,其中低电输出、生物相容性和性能耐久性仍然是关键问题。我们报告了一种基于糖封装聚偏二氟乙烯 (PVDF) 纳米纤维网 (SGNFW) 杂交的高性能压电有机纳米发电机 (PONG)。我们探索了具有迷人结构的单晶糖在糖界面大分子 PVDF 链的纳米限制下协同增强压电性的关键作用。结果,基于 SGNFW 的 PONG 表现出出色的发电能力(例如,在 10 kPa 人的手指冲击下约为 100 V,最大功率密度为 33 mW/m),同时对丰富的不同机械源(如风流、振动、个人电子产品和声音振动)具有敏感性。因此,它为多功能自供电可穿戴传感器设计的实际实现开辟了适用性。此外,由于其快速储能能力,商用电容器可以被 PONG 有效充电。PONG 的高性能不仅提供了“无电池”的发电(几个便携式发光二极管和液晶显示屏单元无需使用外部存储即可供电),而且还承诺将其用于无线信号传输系统,这拓宽了在个人健康监测中的应用潜力。此外,由于几何应力限制效应,PONG 被证明是一种高度耐用的发电装置,经过 10 周的稳定性测试验证。因此,有机纳米发电机将是一种方便的解决方案,适用于预计以自供电方式运行的便携式个人电子设备。

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