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Simple fabrication method of an ultrasensitive gold micro-structured dry skin sensor for biopotential recording

机译:用于生物电势记录的超灵敏金微结构干性皮肤传感器的简单制造方法

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摘要

Fast advancement of dry biopotential electrode has driven to the reduction of using Ag/AgCl (wet electrode). There is a necessity for development of flexible and eco-friendly micro-structured (MSE) dry biopotential electrode utilizing biodegradable and non-toxic materials for a better life and sustainable future. It is very difficult to create micro-structure without using any solvents or high-end equipment. Here, a novel micro structured electrode coated with Ti/Au film is fabricated using a sandpaper template and is proposed for biopotential signal monitoring applications. We used sandpaper, which is recyclable and biodegradable. The proposed MSE is a flexible, stretchable, and biocompatible dry micro-structured electrode. The sheet resistance of the proposed MSE is 2.5 Omega/sq. The area of MSE was only 4 cm x 4 cm (I x w), and the sweat of the epidermis layer of human skin could be utilized as the electrolyte for the flexible MSE during the electrocardiography (ECG) and electromyography (EMG) recording. The fabricated MSE was enough thin and flexible to be well attached onto the skin. The contact impedance of the flexible MSE was stable and suitable for long-term biopotential recording. The main advantage of the electrodes is simple fabrication, which can be used in wearable electrode systems to monitor human health. The results of the experiment show that the proposed electrode can operate in dry conditions when the subject is resting, and it shows fewer motion artifacts during movement.
机译:干生物电势电极的快速发展推动了Ag / AgCl(湿电极)的使用减少。有必要开发使用可生物降解和无毒材料的柔性环保型微结构(MSE)干生物电势电极,以改善生活和可持续发展的未来。不使用任何溶剂或高端设备来创建微结构是非常困难的。在这里,使用砂纸模板制造了一种新型的涂有Ti / Au膜的微结构化电极,并被提出用于生物电势信号监测应用。我们使用了可回收利用和可生物降解的砂纸。拟议的MSE是一种柔性,可拉伸且生物相容的干式微结构电极。建议的MSE的薄层电阻为2.5Ω/ sq。 MSE的面积仅为4 cm x 4 cm(I x w),并且在心电图(ECG)和肌电图(EMG)记录过程中,人皮肤表皮层的汗液可用作柔性MSE的电解质。制成的MSE足够薄且柔软,可以很好地附着在皮肤上。柔性MSE的接触阻抗稳定,适合长期生物电势记录。电极的主要优点是制造简单,可用于可穿戴电极系统以监测人体健康。实验结果表明,所建议的电极在受试者休息时可以在干燥条件下工作,并且在运动过程中显示出更少的运动伪影。

著录项

  • 来源
    《Microelectronic Engineering》 |2018年第10期|96-103|共8页
  • 作者单位

    Kwangwoon Univ, Dept Elect Engn, Micronano Devices & Packaging Lab, 447-1 Wolgye Dong, Seoul 139701, South Korea;

    Kwangwoon Univ, Dept Elect Engn, Micronano Devices & Packaging Lab, 447-1 Wolgye Dong, Seoul 139701, South Korea;

    Kwangwoon Univ, Dept Elect Engn, Micronano Devices & Packaging Lab, 447-1 Wolgye Dong, Seoul 139701, South Korea;

    Kwangwoon Univ, Dept Chem Engn, 447-1 Wolgye Dong, Seoul 139701, South Korea;

    Kwangwoon Univ, Dept Elect Engn, Micronano Devices & Packaging Lab, 447-1 Wolgye Dong, Seoul 139701, South Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    ECG; EMG; Dry electrode; MSE; Hard electrode; Wet electrode; Biopotential;

    机译:ECG;EMG;干电极;MSE;硬电极;湿电极;生物电势;

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