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通过介电调制制备先进的纤维素摩擦电材料。

Fabrication of Advanced Cellulosic Triboelectric Materials via Dielectric Modulation.

机构信息

School of Light Industry and Food Engineering, Guangxi University, Nanning, 530004, P. R. China.

出版信息

Adv Sci (Weinh). 2023 May;10(15):e2206243. doi: 10.1002/advs.202206243. Epub 2023 Mar 26.

Abstract

The rapid rise of triboelectric nanogenerators (TENGs), which are emerging energy conversion devices in advanced electronics and wearable sensing systems, has elevated the interest in high-performance and multifunctional triboelectric materials. Among them, cellulosic materials, affording high efficiency, biodegradability, and customizability, are becoming a new front-runner. The inherently low dielectric constant limits the increase in the surface charge density. However, owing to its unique structure and excellent processability, cellulose shows great potential for dielectric modulation, providing a strong impetus for its advanced applications in the era of Internet of Things and artificial intelligence. This review aims to provide comprehensive insights into the fabrication of dielectric-enhanced cellulosic triboelectric materials via dielectric modulation. The exceptional advantages and research progress in cellulosic materials are highlighted. The effects of the dielectric constant, polarization, and percolation threshold on the charge density are systematically investigated, providing a theoretical basis for cellulose dielectric modulation. Typical dielectric characterization methods are introduced, and their technical characteristics are analyzed. Furthermore, the performance enhancements of cellulosic triboelectric materials endowed by dielectric modulation, including more efficient energy harvesting, high-performance wearable electronics, and impedance matching via material strategies, are introduced. Finally, the challenges and future opportunities for cellulose dielectric modulation are summarized.

摘要

近年来,摩擦纳米发电机(TENG)作为先进电子学和可穿戴传感系统中新兴的能量转换器件得到了快速发展,这使得人们对高性能和多功能摩擦电材料的兴趣日益浓厚。在这些材料中,纤维素材料以其高效率、生物可降解性和可定制性而成为新的领跑者。然而,由于其介电常数较低,限制了表面电荷密度的增加。但由于其独特的结构和优异的加工性能,纤维素在介电调制方面显示出巨大的潜力,为其在物联网和人工智能时代的先进应用提供了强大的动力。本综述旨在全面介绍通过介电调制制备介电增强纤维素摩擦电材料的方法。突出了纤维素材料的卓越优势和研究进展。系统研究了介电常数、极化和渗流阈值对电荷密度的影响,为纤维素介电调制提供了理论基础。介绍了典型的介电特性测试方法,并分析了它们的技术特点。此外,还介绍了通过材料策略赋予纤维素摩擦电材料的性能增强,包括更高效的能量收集、高性能的可穿戴电子设备以及阻抗匹配。最后,总结了纤维素介电调制面临的挑战和未来机遇。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/34da/10214270/4761fa549ae2/ADVS-10-2206243-g003.jpg

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