一种用于自供电可穿戴电子设备的自阻尼摩擦电触觉贴片

IF 42.9 Q1 ELECTROCHEMISTRY
Guoli Du, Jiamin Zhao, Yuzheng Shao, Tao Liu, Bin Luo, Song Zhang, Mingchao Chi, Chenchen Cai, Zhaomeng Liu, Shuangfei Wang, Shuangxi Nie
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引用次数: 0

摘要

仿生设计的可穿戴触觉传感系统在环境交互和人机交流方面具有重要的前景。摩擦电传感技术在获取和量化触觉信号方面起着至关重要的作用。然而,传统的弹性传感材料缺乏阻尼性能,容易受到振动的破坏,导致传感器失效。为了解决这一挑战,我们的研究提出了一种基于氢键辅助微相分离策略的高阻尼摩擦电凝胶。在微相分离中,软相提供凝胶所需的粘弹性,而硬相则耗散激波能量。这种能量耗散机制使凝胶具有优异的阻尼性能(1Hz时tan δ = 0.68)、皮肤般的柔软性(杨氏模量为130 kPa)和拉伸性(>;900%)。由此产生的自阻尼触觉贴片有效地吸收和消散外部振动,确保了稳定可靠的可穿戴触觉传感设备。这项工作为摩擦电凝胶在可穿戴电子产品中的应用提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A self-damping triboelectric tactile patch for self-powered wearable electronics

A self-damping triboelectric tactile patch for self-powered wearable electronics
Wearable tactile sensing systems with bionic designs holds significant promise for environmental interactions and human–machine communication. Triboelectric sensing technology plays a vital role in acquiring and quantifying tactile signals. Conventional elastic sensing materials, however, lack damping performance and are easily damaged by vibrations, leading to sensor failure. To address this challenge, our study proposes a highly damping triboelectric gel based on a hydrogen bonding assisted microphase separation strategy. In microphase separation, the soft phase provides the viscoelasticity needed for the gel, while the hard phase dissipates shock energy. This energy dissipation mechanism enables the gel to achieve excellent damping performance (tan ​δ ​= ​0.68 ​at 1Hz), skin-like softness (Young’s modulus of 130 ​kPa), and stretchability (> 900 ​%). The resulting self-damping tactile patch effectively absorbs and dissipates external vibrations, ensuring a stable and reliable wearable tactile sensing device. This work provides new insights into the application of triboelectric gels in wearable electronics.
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CiteScore
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