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基于人体皮肤的摩擦纳米发电机,用于收集生物力学能量和作为自供电主动触觉传感器系统。

Human skin based triboelectric nanogenerators for harvesting biomechanical energy and as self-powered active tactile sensor system.

机构信息

School of Materials Science and Engineering, Georgia Institute of Technology , Atlanta, Georgia 30332-0245, United States.

出版信息

ACS Nano. 2013 Oct 22;7(10):9213-22. doi: 10.1021/nn403838y. Epub 2013 Sep 5.

Abstract

We report human skin based triboelectric nanogenerators (TENG) that can either harvest biomechanical energy or be utilized as a self-powered tactile sensor system for touch pad technology. We constructed a TENG utilizing the contact/separation between an area of human skin and a polydimethylsiloxane (PDMS) film with a surface of micropyramid structures, which was attached to an ITO electrode that was grounded across a loading resistor. The fabricated TENG delivers an open-circuit voltage up to -1000 V, a short-circuit current density of 8 mA/m(2), and a power density of 500 mW/m(2) on a load of 100 MΩ, which can be used to directly drive tens of green light-emitting diodes. The working mechanism of the TENG is based on the charge transfer between the ITO electrode and ground via modulating the separation distance between the tribo-charged skin patch and PDMS film. Furthermore, the TENG has been used in designing an independently addressed matrix for tracking the location and pressure of human touch. The fabricated matrix has demonstrated its self-powered and high-resolution tactile sensing capabilities by recording the output voltage signals as a mapping figure, where the detection sensitivity of the pressure is about 0.29 ± 0.02 V/kPa and each pixel can have a size of 3 mm × 3 mm. The TENGs may have potential applications in human-machine interfacing, micro/nano-electromechanical systems, and touch pad technology.

摘要

我们报告了一种基于人体皮肤的摩擦纳米发电机(TENG),它既可以收集生物力学能量,也可以用作触摸板技术的自供电触觉传感器系统。我们构建了一个 TENG,利用人体皮肤与附着在 ITO 电极上的具有微金字塔结构表面的聚二甲基硅氧烷(PDMS)膜之间的接触/分离,ITO 电极通过负载电阻接地。所制造的 TENG 可提供高达-1000 V 的开路电压、8 mA/m(2) 的短路电流密度和 500 mW/m(2) 的功率密度,在 100 MΩ 的负载下,可直接驱动数十个绿光发光二极管。TENG 的工作机制基于通过调制摩擦带电皮肤贴片和 PDMS 膜之间的分离距离,在 ITO 电极和地之间进行电荷转移。此外,TENG 已用于设计用于跟踪人体触摸位置和压力的独立寻址矩阵。所制造的矩阵通过记录输出电压信号作为映射图来展示其自供电和高分辨率触觉传感能力,其中压力检测灵敏度约为 0.29 ± 0.02 V/kPa,每个像素的大小可以为 3 mm×3 mm。TENG 可能在人机界面、微/纳米机电系统和触摸板技术中有潜在的应用。

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