Suppr超能文献

基于由皱缩导电橡胶电极组成的可拉伸离子凝胶机械感受器的仿生电子皮肤,用于同步应变、压力和温度检测。

Biomimetic Electronic Skin Based on a Stretchable Ionogel Mechanoreceptor Composed of Crumpled Conductive Rubber Electrodes for Synchronous Strain, Pressure, and Temperature Detection.

作者信息

Bi Xiaoyun, Yao Manzhao, Huang Zhaoyan, Wang Zuhao, Shen Huahao, Wong Ching-Ping, Jiang Can

机构信息

Hubei Key Laboratory of Plasma Chemistry and Advanced Materials, School of Materials Science and Engineering, Wuhan Institute of Technology, Wuhan 430205, China.

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

出版信息

ACS Appl Mater Interfaces. 2024 Apr 9. doi: 10.1021/acsami.4c01899.

Abstract

Electronic skin (e-skin) is showing a huge potential in human-computer interaction, intelligent robots, human health, motion monitoring, etc. However, it is still challenging for e-skin to realize distinguishable detection of stretching strain, vertical pressure, and temperature through a simple noncoupling structure design. Here, a stretchable multimodal biomimetic e-skin was fabricated by integrating layer-by-layer self-assembled crumpled reduced graphene oxide/multiwalled carbon nanotubes film on natural rubber (RGO/MWCNTs@NR) as stretchable conductive electrodes and polyacrylamide/NaCl ionogel as a dielectric layer into an ionotropic capacitive mechanoreceptor. Unlike natural skin receptors, the sandwich-like stretchable ionogel mechanoreceptor possessed a distinct ionotropic capacitive behavior for strain and pressure detection. The results showed that the biomimetic e-skin displayed a negative capacitance change with superior stretchability (0-300%) and a high gauge factor of 0.27 in 180-300% strain, while exhibiting a normal positive piezo-capacitance behavior in vertical pressure range of 0-15 kPa with a maximal sensitivity of 1.759 kPa. Based on this feature, the biomimetic e-skin showed an excellent synchronous detection capability of planar strain and vertical pressure in practical wearable applications such as gesture recognition and grasping movement detection without a complicated mathematical or signal decoupling process. In addition, the biomimetic e-skin exhibited a quantifiable linear responsiveness to temperature from 20-90 °C with a temperature coefficient of 0.55%/°C. These intriguing properties gave the biomimetic e-skin the ability to perform a complete function similar to natural skin but beyond its performance for future wearable devices and artificial intelligence devices.

摘要

电子皮肤(e - 皮肤)在人机交互、智能机器人、人类健康、运动监测等领域展现出巨大潜力。然而,通过简单的非耦合结构设计使电子皮肤实现对拉伸应变、垂直压力和温度的可区分检测仍具有挑战性。在此,通过将层层自组装的皱缩还原氧化石墨烯/多壁碳纳米管薄膜(RGO/MWCNTs@NR)作为可拉伸导电电极,以及聚丙烯酰胺/氯化钠离子凝胶作为介电层集成到离子型电容式机械感受器中,制备了一种可拉伸的多模态仿生电子皮肤。与天然皮肤感受器不同,这种三明治状的可拉伸离子凝胶机械感受器在应变和压力检测方面具有独特的离子型电容行为。结果表明,该仿生电子皮肤在0 - 300%的拉伸应变下呈现负电容变化,具有优异的拉伸性,在180 - 300%应变下的应变系数高达0.27,同时在0 - 15 kPa的垂直压力范围内表现出正常的正压电电容行为,最大灵敏度为1.759 kPa。基于这一特性,该仿生电子皮肤在诸如手势识别和抓握运动检测等实际可穿戴应用中,无需复杂的数学或信号解耦过程,即可展现出对平面应变和垂直压力的出色同步检测能力。此外,该仿生电子皮肤在20 - 90 °C的温度范围内对温度呈现可量化的线性响应,温度系数为0.55%/°C。这些引人入胜的特性赋予了该仿生电子皮肤执行类似于天然皮肤的完整功能的能力,但其性能超越了天然皮肤,适用于未来的可穿戴设备和人工智能设备。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验