摩擦电效应
纳米发生器
材料科学
能量收集
机械能
可穿戴技术
可穿戴计算机
纳米技术
可扩展性
制作
电压
功率(物理)
织物
机械工程
硅橡胶
航空航天
纳米复合材料
电源管理
能量(信号处理)
多孔性
风力发电
计算机科学
电气工程
天然橡胶
高效能源利用
底盘
光电子学
硅酮
电力
光伏系统
作者
Pengfei Chen,Wei‐Chen Peng,Wei‐Chun Yang,SHU‐WEI WANG,Yan‐Cheng Wu,Shi‐Hong Chen,Yi‐Lin Huang,Cheng‐Hung Tsai,Hongwei Lu,X. Wang,Ying‐Chih Lai
摘要
ABSTRACT Light, adaptable, and distributed power sources are essential for materializing various wearable devices and popularizing Internet‐of‐Things (IoT) applications. While triboelectric nanogenerators (TENGs) represent a promising solution of wearable energy, many existing fabric‐based TENGs (f‐TENGs) face challenges in terms of weight, environmental adaptability, and scalable manufacturing. Here, we report a unitary, waterproof, and industrially compatible f‐TENG that efficiently harvests energy from diverse natural and biomechanical sources, including rain, wind, and human motion, while functioning as a self‐powered sensor and human–machine interface. The f‐TENG incorporates sueding‐treated polyethylene and nylon fabrics with spray‐coated silicone rubber particles to enhance charge transfer, alongside a porous polyurethane spacer that optimizes compressibility and contact–separation efficiency. This design reduces device weight by over 8 times compared to previous systems while achieving higher electrical output (315 V open‐circuit voltage and 118 mW/m 2 power density). Critically, all fabrication processes align with standard industrial textile manufacturing, ensuring scalability and cost‐effectiveness. We demonstrate applications in health monitoring, speech recognition, interactive controls, and sports training, providing a new direction for fabricating lightweight and cost‐effective multifunctional TENGs, and highlighting the potential of the f‐TENG to enable future generations of self‐powered e‐textiles and sustainable wearable systems.
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