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自修复和剪切增稠电极,用于可穿戴生物电位传感和手势识别。

Self-Healing and Shear-Stiffening Electrodes for Wearable Biopotential Sensing and Gesture Recognition.

机构信息

School of Precision Instrument and Optoelectronics Engineering, Tianjin University, 92 Weijin Road, Tianjin 300072, China.

State Key Laboratory of Precision Measuring Technology and Instruments, Tianjin University, 92 Weijin Road, Tianjin 300072, China.

出版信息

ACS Sens. 2024 Oct 25;9(10):5253-5263. doi: 10.1021/acssensors.4c01445. Epub 2024 Sep 27.

Abstract

The achievement of flexible skin electrodes for dynamic monitoring of biopotential is one of the challenging issues in flexible electronics due to the interference of large acceleration and heavy sweat that influence the stability of skin-electrode interfaces. This work presents materials and techniques to achieve self-healing and shear-stiffening electrodes and an associated flexible system that can be used for multichannel biopotential measurement on the skin. The electrode that is based on a composite of silver (Ag) flakes, Ag nanowires, and polyborosiloxane offers an electrical conductivity of 9.71 × 10 S/m and a rheological characteristic that ensures stable and fully conformal contact with skin and easy removal under different shear rates. The electrode can maintain its conductivity even after being stretched by more than 60% and becomes self-healed after mechanical damage. The combination of the electrodes with a screen-printed multichannel flexible sensor allows stable monitoring of both static and dynamic electromyography signals, leading to the acquisition of high-quality multilead biopotential signals that can be readily extracted to yield gesture recognition results with over 97.42% accuracy. The conductive self-healing materials and flexible sensors may be utilized in various daily biopotential sensing applications, allowing highly stable dynamic measurement to facilitate artificial intelligence-enabled health condition diagnosis and human-computer interface.

摘要

用于动态监测生物电位的柔性皮肤电极的实现是柔性电子学中的一个具有挑战性的问题,因为大加速度和大量汗液的干扰会影响皮肤-电极界面的稳定性。本工作提出了实现自修复和剪切增稠电极的材料和技术,以及一种相关的柔性系统,可用于皮肤的多通道生物电位测量。该电极基于银(Ag)薄片、Ag 纳米线和聚硼硅氧烷的复合材料,具有 9.71×10 S/m 的电导率和流变特性,可确保与皮肤的稳定和完全共形接触,并在不同剪切速率下易于去除。即使在拉伸超过 60%后,电极仍能保持其导电性,并在机械损坏后自行修复。将电极与丝网印刷的多通道柔性传感器相结合,可以稳定地监测静态和动态肌电图信号,从而获得高质量的多导联生物电位信号,可以轻松提取这些信号以获得超过 97.42%准确率的手势识别结果。导电自修复材料和柔性传感器可用于各种日常生物电位传感应用,实现高度稳定的动态测量,从而促进人工智能驱动的健康状况诊断和人机接口。

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