Enhancing triboelectric performance in PVDF-based folded spring-type triboelectric nanogenerators via heat-induced phase transition and dielectric optimization for energy harvesting and self-powered sensing†

IF 5.1 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Yu Qiu, Mingming Gou, Jiahao Zhao, Chonghao Bao, Yuntao Bai and Dechao Yang
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Abstract

As a promising and sustainable power source for smart electronic devices and self-powered devices, triboelectric nanogenerators (TENGs) have gained significant attention owing to their high energy conversion efficiency and versatile applications. In recent years, electrospun polyvinylidene fluoride (PVDF) nanofibers have emerged as an efficient material for enhancing TENG performance, owing to their high specific surface area, excellent mechanical properties and large-scale production. However, the insufficient output power of PVDF-based TENGs remains a critical challenge for practical applications. In this work, we construct folded spring-type triboelectric nanogenerators (FTENGs) based on heat treated optimized PVDF fibers, and comprehensively explore the impact of heat treatment on the phase transition and dielectric properties of PVDF, as well as the resultant enhancement in triboelectric performance. In-depth investigations reveal that the optimal heat treatment at 100 °C achieved the best balance between β-phase content (69.49%) and dielectric properties in PVDF. Furthermore, the important factors of the FTENG, including the number of layers, compression amplitude and external forces are also systematically elaborated. The optimized FTENG demonstrates outstanding performance with an open-circuit voltage of 100.94 V, a short-circuit current of 827.37 nA, and a peak power output of 470 μW at 45 MΩ load, demonstrating its capability to power a wide range of electronic devices. This study not only provides a practical strategy for enhancing the output performance of TENGs but also paves the way for their applications in energy harvesting and self-powered sensing systems, particularly in wearable electronics and IoT devices.

Abstract Image

基于热致相变和介电介质优化的pvdf折叠弹簧型摩擦电纳米发电机在能量收集和自供电传感中的摩擦电性能
摩擦纳米发电机(TENGs)作为智能电子器件和自供电器件的一种有前途的可持续电源,由于其高能量转换效率和广泛的应用而受到广泛关注。近年来,静电纺聚偏氟乙烯(PVDF)纳米纤维因其高比表面积、优异的力学性能和可大规模生产的特点而成为提高TENG性能的有效材料。然而,基于pvdf的teng的输出功率不足仍然是实际应用的关键挑战。在本研究中,我们基于热处理优化的PVDF纤维构建了折叠弹簧型摩擦电纳米发电机(FTENGs),并全面探讨了热处理对PVDF相变和介电性能的影响,以及由此带来的摩擦电性能的增强。深入研究表明,在100℃的最佳热处理条件下,PVDF的β相含量(69.49%)和介电性能达到了最佳平衡。此外,还系统地阐述了FTENG的重要影响因素,包括层数、压缩幅值和外力。优化后的FTENG具有良好的性能,在45 MΩ负载下,其开路电压为100.94 V,短路电流为827.37 nA,峰值输出功率为470 μW,可以为各种电子设备供电。这项研究不仅为提高teng的输出性能提供了一种实用的策略,而且为其在能量收集和自供电传感系统中的应用铺平了道路,特别是在可穿戴电子产品和物联网设备中。
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来源期刊
Journal of Materials Chemistry C
Journal of Materials Chemistry C MATERIALS SCIENCE, MULTIDISCIPLINARY-PHYSICS, APPLIED
CiteScore
10.80
自引率
6.20%
发文量
1468
期刊介绍: The Journal of Materials Chemistry is divided into three distinct sections, A, B, and C, each catering to specific applications of the materials under study: Journal of Materials Chemistry A focuses primarily on materials intended for applications in energy and sustainability. Journal of Materials Chemistry B specializes in materials designed for applications in biology and medicine. Journal of Materials Chemistry C is dedicated to materials suitable for applications in optical, magnetic, and electronic devices. Example topic areas within the scope of Journal of Materials Chemistry C are listed below. This list is neither exhaustive nor exclusive. Bioelectronics Conductors Detectors Dielectrics Displays Ferroelectrics Lasers LEDs Lighting Liquid crystals Memory Metamaterials Multiferroics Photonics Photovoltaics Semiconductors Sensors Single molecule conductors Spintronics Superconductors Thermoelectrics Topological insulators Transistors
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