摩擦电效应
材料科学
聚合物
表面改性
表面电荷
电荷密度
光电子学
静电感应
机械能
纳米技术
化学物理
辐照
密度泛函理论
电子
带隙
电荷(物理)
表面能
离子束
离子
阴极射线
磨损(机械)
电荷
静电学
灵敏度(控制系统)
接触带电
载流子
电子能带结构
驻极体
电势能
静电
化学种类
可穿戴技术
梁(结构)
曲面(拓扑)
储能
静电放电
电场
作者
Yi Chen,Yuliang Yao,X. SHEN,Meiling Gong,Chuan Xu,Chunliang Zhou,Fuqiu Ma,Jian Zhang,Xiangyu Chen,Yanxia Liang,Engang Fu,Y B Fan
标识
DOI:10.1002/advs.202518257
摘要
Triboelectric nanogenerators (TENGs) exhibit high sensitivity and flexibility, enabling them to rapidly and effectively respond to high-entropy mechanical energy sources like friction and contact into utilizable electrical power, TENGs are emerging as one of the most promising devices for future applications in wearable devices and self-powered sensors. However, the flexible polymers charging materials used in TENGs inherently suffer from low surface charge density, which significantly constrains their electrical performance. This study proposed a gradient ion beam irradiation strategy to engineer functional groups on polymer surfaces through precise dose-control irradiation, thereby enhancing interfacial charge transport capability. Electrical testing revealed 13-, 10-, and 7-fold improvements in output voltage, current, and surface charge density, respectively, with stability exceeding 1440-fold that of pure charge injection. Chemical structural evolution under varying irradiation doses was systematically investigated to probe molecular-scale regulatory mechanisms. Combining density functional theory (DFT) calculations, we found that the energy bandgap of the surface molecular structure decreased after irradiation, and the distribution of the electrostatic surface potential (ESP) indicated an increase in electron energy, thereby elucidating the mechanism underlying the enhanced surface charge transport in charged polymers. Meanwhile, after being fabricated into micro-devices, they exhibit high sensitivity and excellent abrasion resistance, establishing a theoretical foundation for advancing TENG functionality in wearable sensors and flexible electronics.
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