基于纺织品的摩擦电纳米发电机:对可穿戴应用的材料、织物设计和可洗涤性的重要回顾

IF 6.8 3区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Bekinew Kitaw Dejene, Ajebew Yalew Melese
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引用次数: 0

摘要

基于纺织品的摩擦电纳米发电机(t - teng)已经成为一种有前途的自供电可穿戴电子产品技术,利用日常服装和织物从人体运动中获取机械能。与传统的刚性teng不同,t - teng具有卓越的灵活性,透气性和与纺织品的无缝集成,使其成为智能可穿戴设备,医疗监控和物联网(IoT)应用的理想选择。然而,在优化纤维材料、织物结构和实际应用的长期可洗涤性方面仍然存在关键挑战。本文对T-TENGs的最新进展进行了全面而批判性的分析,重点关注三个关键领域:(1)纤维选择(摩擦电材料、导电元件和混合功能化),(2)织物结构优化(机织、针织和非织造结构、分层设计和拉伸性能增强),以及(3)耐洗性和耐久性挑战(降解机制、封装策略和标准化测试方法)。我们系统地评估了性能、舒适性和耐用性之间的权衡,突出了未解决的问题,如洗涤后的机械退化、电极分层和可扩展性限制。此外,我们讨论了在可穿戴能量收集、自供电传感器和智能纺织品方面的新兴应用,同时概述了未来的研究方向,包括可持续材料、机器学习辅助设计和与储能系统的集成。本文旨在为研究下一代t- teng的研究人员和工程师提供指导,弥合实验室规模创新与商业上可行的基于纺织品的能源解决方案之间的差距。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Textile-based triboelectric nanogenerators: A critical review of materials, fabric designs, and washability for wearable applications
Textile-based triboelectric nanogenerators (T-TENGs) have emerged as a promising technology for self-powered wearable electronics, leveraging everyday clothing and fabrics to harvest mechanical energy from human motions. Unlike conventional rigid TENGs, T-TENGs offer superior flexibility, breathability, and seamless integration into textiles, making them ideal for applications in smart wearables, healthcare monitoring, and the Internet of Things (IoT). However, critical challenges remain in optimizing fiber materials, fabric structures, and long-term washability for practical applications. This review provides a comprehensive and critical analysis of recent advancements in T-TENGs, focusing on three key areas: (1) fiber selection (triboelectric materials, conductive components, and hybrid functionalization), (2) fabric structure optimization (woven, knitted, and nonwoven architectures, layered designs, and stretchability enhancements), and (3) washability and durability challenges (degradation mechanisms, encapsulation strategies, and standardized testing methods). We systematically evaluated the trade-offs between performance, comfort, and durability, highlighting unresolved issues such as mechanical degradation after washing, electrode delamination, and scalability limitations. Furthermore, we discussed emerging applications in wearable energy harvesting, self-powered sensors, and smart textiles, while outlining future research directions, including sustainable materials, machine learning-assisted design, and integration with energy-storage systems. This review aims to serve as a guideline for researchers and engineers working on next-generation T-TENGs, bridging the gap between laboratory-scale innovations and commercially viable textile-based energy solutions.
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来源期刊
Journal of Science: Advanced Materials and Devices
Journal of Science: Advanced Materials and Devices Materials Science-Electronic, Optical and Magnetic Materials
CiteScore
11.90
自引率
2.50%
发文量
88
审稿时长
47 days
期刊介绍: In 1985, the Journal of Science was founded as a platform for publishing national and international research papers across various disciplines, including natural sciences, technology, social sciences, and humanities. Over the years, the journal has experienced remarkable growth in terms of quality, size, and scope. Today, it encompasses a diverse range of publications dedicated to academic research. Considering the rapid expansion of materials science, we are pleased to introduce the Journal of Science: Advanced Materials and Devices. This new addition to our journal series offers researchers an exciting opportunity to publish their work on all aspects of materials science and technology within the esteemed Journal of Science. With this development, we aim to revolutionize the way research in materials science is expressed and organized, further strengthening our commitment to promoting outstanding research across various scientific and technological fields.
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