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基于简化的皮肤印刷传感器模式的生理压力和表皮生物电位的协同监测。

Synergetic Monitoring of both Physiological Pressure and Epidermal Biopotential Based on a Simplified on-Skin-Printed Sensor Modality.

机构信息

School of Mechanical Engineering, Sichuan University, Chengdu, 610065, China.

Med + X Center for Manufacturing, West China Hospital, Sichuan University, Chengdu, 610041, China.

出版信息

Small. 2023 Nov;19(45):e2303301. doi: 10.1002/smll.202303301. Epub 2023 Jul 9.

Abstract

Flexible electronic sensors show great potential for health monitoring but are usually limited to single sensing functionality. To enrich their functions, complicated device configurations, sophisticated material systems, and preparation processes are typically involved, obstructing their large-scale deployment and widespread application. Herein, to achieve a good balance between simplicity and multifunctionality, a new paradigm of sensor modality for both mechanical sensing and bioelectrical sensing is presented based on a single material system and a simple solution processing approach. The whole multifunctional sensors are constructed with a pair of highly conductive ultrathin electrodes (WPU/MXene-1) and an elastic micro-structured mechanical sensing layer (WPU/MXene-2), with the human skin serving as the substrate for the whole sensors. The resultant sensors show high pressure sensitivity and low skin-electrode interfacial impedance, enabling to synergetically monitor both physiological pressure (e.g., arterial pulse signals) and epidermal bioelectrical signals (including electrocardiograph and electromyography). The universality and extensibility of this methodology to construct multifunctional sensors with different material systems are also verified. This simplified sensor modality with enhanced multifunctionality provides a novel design concept to construct future smart wearables for health monitoring and medical diagnosis.

摘要

柔性电子传感器在健康监测方面具有巨大的潜力,但通常仅限于单一的传感功能。为了丰富它们的功能,通常需要复杂的设备配置、复杂的材料系统和制备工艺,这阻碍了它们的大规模部署和广泛应用。在此,为了在简单性和多功能性之间取得良好的平衡,提出了一种基于单一材料系统和简单溶液处理方法的新型传感器模式,用于机械传感和生物电传感。整个多功能传感器由一对高导电性的超薄电极(WPU/MXene-1)和一个弹性微结构机械传感层(WPU/MXene-2)构建而成,其中人体皮肤作为整个传感器的基底。所得到的传感器表现出高的压力灵敏度和低的皮肤-电极界面阻抗,能够协同监测生理压力(例如,动脉脉搏信号)和表皮生物电信号(包括心电图和肌电图)。还验证了这种方法在构建具有不同材料系统的多功能传感器方面的通用性和可扩展性。这种具有增强多功能性的简化传感器模式为构建用于健康监测和医学诊断的未来智能可穿戴设备提供了一种新的设计理念。

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