Lee Sanghyun, Ho Dong Hae, Jekal Janghwan, Cho Soo Young, Choi Young Jin, Oh Saehyuck, Choi Yoon Young, Lee Taeyoon, Jang Kyung-In, Cho Jeong Ho
Department of Chemical and Biomolecular Engineering, Yonsei University, Seoul, Republic of Korea.
Department of Energy Science and Engineering, Daegu Gyeongbuk Institute of Science and Technology (DGIST), Daegu, Republic of Korea.
Nat Commun. 2024 Oct 2;15(1):5974. doi: 10.1038/s41467-024-49939-x.
Commercial wearable biosignal sensing technologies encounter challenges associated with irritation or discomfort caused by unwanted objects in direct contact with the skin, which can discourage the widespread adoption of wearable devices. To address this issue, we propose a fabric-based lamina emergent MXene-based electrode, a lightweight and flexible shape-morphing wearable bioelectrode. This work offers an innovative approach to biosignal sensing by harnessing the high electrical conductivity and low skin-to-electrode contact impedance of MXene-based dry electrodes. Its design, inspired by Nesler's pneumatic interference actuator, ensures stable skin-to-electrode contact, enabling robust biosignal detection in diverse situations. Extensive research is conducted on key design parameters, such as the width and number of multiple semicircular legs, the radius of the anchoring frame, and pneumatic pressure, to accommodate a wide range of applications. Furthermore, a real-time wireless electrophysiological monitoring system has been developed, with a signal-to-noise ratio and accuracy comparable to those of commercial bioelectrodes. This work excels in recognizing various hand gestures through a convolutional neural network, ultimately introducing a shape-morphing electrode that provides reliable, high-performance biosignal sensing for dynamic users.
商业可穿戴生物信号传感技术面临着与直接接触皮肤的异物所引起的刺激或不适相关的挑战,这可能会阻碍可穿戴设备的广泛应用。为了解决这个问题,我们提出了一种基于织物的层状新兴MXene基电极,这是一种轻质且可灵活变形的可穿戴生物电极。这项工作通过利用MXene基干电极的高电导率和低皮肤与电极接触阻抗,提供了一种创新的生物信号传感方法。其设计灵感来自内斯勒的气动干涉执行器,确保了皮肤与电极的稳定接触,能够在各种情况下进行可靠的生物信号检测。对关键设计参数进行了广泛研究,如多个半圆形支腿的宽度和数量、锚固框架的半径以及气压,以适应广泛的应用。此外,还开发了一种实时无线电生理监测系统,其信噪比和准确性与商业生物电极相当。这项工作在通过卷积神经网络识别各种手势方面表现出色,最终推出了一种可变形电极,为动态用户提供可靠、高性能的生物信号传感。