计算机科学
触觉技术
桥接(联网)
数码产品
接口(物质)
电子皮肤
人机交互
纳米技术
柔性电子器件
人工智能
发电机(电路理论)
仿生学
嵌入式系统
信号(编程语言)
机器人
人造皮肤
机器人学
模拟
材料科学
功率(物理)
虚拟现实
深度学习
用户界面
作者
Chenhui Bai,Xinyu Dong,Quyang Liu,Ming Zhao,Kun Yang,Yu Lan Niu,HuLin ZHANG,Wei Zhai
标识
DOI:10.1038/s41467-026-69450-9
摘要
Bridging biological and artificial systems, intelligent interfaces drive the demand for flexible electronics that emulate the skin's multifunctionality. However, achieving such multifunctionality in a compact, self-sustained form remains challenging, as multimodal sensors often rely on rigid materials, discrete components, and external power sources. Herein, this study presents a single-component poly(vinyl alcohol) hydrogel e-skin integrating thermogalvanic, piezoionic, and diffusion mechanisms for self-powered sensing of skin temperature, arterial pulsation, and sweat secretion, simultaneously. The hydrogel features high stretchability, low modulus, and a prismatic architecture synergizing ionic polarization. Moreover, a temporal machine learning model with local attention is developed to decouple multimodal signals. Of practical importance, an active multimodal signal generator wristband is developed as a multifunctional human-machine interface for physiological detection, robotic control, and haptic feedback reproduction. Hence, this hydrogel e-skin represents an efficient material platform for intelligent interactions, showing broad potential for real-time health monitoring, robotic control, and virtual reality.
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