具有增强输出和荧光功能的碳量子点功能化纳米纤维摩擦电纳米发电机

IF 24.5 Q1 CHEMISTRY, PHYSICAL
Ru Guo, Quan Hu, Hang Luo, Xuefan Zhou, Dou Zhang, Dong Guan, Weizhao Zhang, Yunlong Zi
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引用次数: 0

摘要

具有优异性能和功能集成度的先进纳米纤维材料是开发新兴可穿戴电子产品的迫切需要。在这项工作中,提出了碳量子点/聚偏氟乙烯(CDs/PVDF)基复合纳米纤维材料,并作为一种高负极材料来提高摩擦电纳米发电机(teng)的输出性能。纳米尺寸和表面功能化的CDs作为成核诱导剂,促进了PVDF聚合物的β-极化相变。CDs/PVDF纳米纤维膜通过极化的β相PVDF产生更多的负表面电荷密度,从而导致更大的静电电位差,从而增强电荷转移。除了减少了珠状缺陷外,还产生了更均匀的纤维形态,提高了有效接触面积。此外,CDs/PVDF复合纳米纤维显示出独特的多色荧光效应,使其在可视化显示和传感方面具有广阔的应用前景。最后,制备的TENG具有~61.8 mA/m2的短路电流密度和~11.7 W/m2的最大峰值功率密度,超过了迄今为止报道的大多数最先进的基于纳米纤维的TENG。作为应用潜力的演示,这款TENG展示了充电电容器的能量收集能力,并点亮125个绿色led,以及用于人体运动监测的自供电传感能力。这项工作为开发高输出的新型摩擦材料提供了见解,在生物力学能量收集、自供电传感等方面具有广阔的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Carbon Quantum Dot Functionalized Nanofiber-Based Triboelectric Nanogenerator With Boosted Output and Fluorescence Function

Carbon Quantum Dot Functionalized Nanofiber-Based Triboelectric Nanogenerator With Boosted Output and Fluorescence Function

Advanced nanofibrous materials with excellent performance and functional integration is highly desired for developing emerging wearable electronics. In this work, carbon quantum dots/poly(vinylidene fluoride) (CDs/PVDF) based composite nanofibrous material is proposed and acts as a highly negative material to boost output performance for triboelectric nanogenerators (TENGs). The nanometer-sized and surface-functionalized CDs acting as nucleating inducers facilitate the polarized β-phase transition of PVDF polymer. The more negative surface charge density of CDs/PVDF nanofibrous membrane is generated through the polarized β-phase PVDF, thereby leading to a larger electrostatic potential difference to enhance charge transfer. Besides the decreased beaded defects, more uniform morphology fibers are yielded to improve the effective contact surface area. Moreover, the CDs/PVDF composite nanofibers demonstrate the unique multicolor fluorescence effect enabling promising applications in visualized displays and sensing. Finally, the fabricated TENG features a short-circuit current density of ~61.8 mA/m2 and a maximum peak power density of ~11.7 W/m2, exceeding that of most state-of-the-art nanofiber-based TENG reported to date. As a demonstration of application potential, this TENG shows the energy-harvesting ability to charge capacitors and light up 125 green LEDs and self-powered sensing capability for human motion monitoring. This work provides insights for exploiting novel tribomaterials for high-output TENGs with promising potential in biomechanical energy harvesting, self-powered sensing, and so forth.

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