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用于自供电非接触传感的摩擦纳米纸的相控组装

Phase-Directed Assembly of Triboelectric Nanopaper for Self-Powered Noncontact Sensing.

作者信息

Wang Jinlong, Zhu Siqiyuan, Li Jiangtao, Liu Yanhua, Luo Bin, Liu Tao, Chi Mingchao, Zhang Song, Cai Chenchen, Li Xiuzhen, Gao Cong, Zhao Tong, He Biying, Wang Shuangfei, Nie Shuangxi

机构信息

Guangxi Key Laboratory of Clean Pulp & Papermaking and Pollution Control, School of Light Industry and Food Engineering, Guangxi University, Nanning 530004, China.

出版信息

Nano Lett. 2024 Jun 26;24(25):7809-7818. doi: 10.1021/acs.nanolett.4c02358. Epub 2024 Jun 14.

Abstract

Noncontact sensing technology serves as a pivotal medium for seamless data acquisition and intelligent perception in the era of the Internet of Things (IoT), bringing innovative interactive experiences to wearable human-machine interaction perception networks. However, the pervasive limitations of current noncontact sensing devices posed by harsh environmental conditions hinder the precision and stability of signals. In this study, the triboelectric nanopaper prepared by a phase-directed assembly strategy is presented, which possesses low charge transfer mobility (1618 cm V s) and exceptional high-temperature stability. Wearable self-powered noncontact sensors constructed from triboelectric nanopaper operate stably under high temperatures (200 °C). Furthermore, a temperature warning system for workers in hazardous environments is demonstrated, capable of nonintrusively identifying harmful thermal stimuli and detecting motion status. This research not only establishes a technological foundation for accurate and stable noncontact sensing under high temperatures but also promotes the sustainable intelligent development of wearable IoT devices under extreme environments.

摘要

非接触式传感技术是物联网(IoT)时代实现无缝数据采集和智能感知的关键媒介,为可穿戴人机交互感知网络带来了创新的交互体验。然而,当前非接触式传感设备在恶劣环境条件下存在的普遍局限性阻碍了信号的精度和稳定性。在本研究中,提出了一种通过相控组装策略制备的摩擦纳米纸,其具有低电荷转移迁移率(1618 cm V s)和出色的高温稳定性。由摩擦纳米纸构建的可穿戴自供电非接触式传感器在高温(200°C)下稳定运行。此外,还展示了一种用于危险环境中工作人员的温度预警系统,该系统能够非侵入式地识别有害热刺激并检测运动状态。本研究不仅为高温下精确稳定的非接触式传感奠定了技术基础,还推动了极端环境下可穿戴物联网设备的可持续智能发展。

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