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自然驱动的生物兼容表皮电子皮肤,用于实时无线监测人体生理信号。

Nature-Driven Biocompatible Epidermal Electronic Skin for Real-Time Wireless Monitoring of Human Physiological Signals.

机构信息

Functional Materials and Devices Division, CSIR-Central Glass and Ceramic Research Institute, Kolkata 700032, West Bengal, India.

Institute of Systems and Robotics, University of Coimbra, 3030-290 Coimbra, Portugal.

出版信息

ACS Appl Mater Interfaces. 2023 Apr 26;15(16):20372-20384. doi: 10.1021/acsami.3c00509. Epub 2023 Apr 17.

Abstract

Wearable bioelectronic patches are creating a transformative effect in the health care industry for human physiological signal monitoring. However, the use of such patches is restricted due to the unavailability of a proper power source. Ideal biodevices should be thin, soft, robust, energy-efficient, and biocompatible. Here, we report development of a flexible, lightweight, and biocompatible electronic skin-cum-portable power source for wearable bioelectronics by using a processed chicken feather fiber. The device is fabricated with a novel, breathable composite of biowaste chicken feather and organic poly(vinylidene fluoride) (PVDF) polymer, where the chicken feather fiber constitutes the "microbones" of the PVDF, enhancing its piezoelectric phase content, biocompatibility, and crystallinity. Thanks to its outstanding pressure sensitivity, the fabricated electronic skin is used for the monitoring of different human physiological signals such as body motion, finger and joint bending, throat activities, and pulse rate with excellent sensitivity. A wireless system is developed to remotely receive the different physiological signals as captured by the electronic skin. We also explore the capabilities of the device as a power source for other small electronics. The piezoelectric energy harvesting device can harvest a maximum output voltage of ∼28 V and an area power density of 1.4 μW·cm from the human finger imparting. The improved energy harvesting property of the device is related to the induced higher fraction of the electroactive phase in the composite. The easy process ability, natural biocompatibility, superior piezoelectric performance, high pressure sensitivity, and alignment toward wireless transmission of the captured data make the device a promising candidate for wearable bioelectronic patches and power sources.

摘要

可穿戴式生物电子贴片正在医疗保健行业产生变革性的影响,可用于监测人体生理信号。然而,由于缺乏合适的电源,此类贴片的应用受到限制。理想的生物设备应该是轻薄、柔软、坚固、节能且生物兼容的。在这里,我们报告了一种通过使用处理过的鸡毛纤维开发的灵活、轻便且生物兼容的电子皮肤-便携式可穿戴生物电子设备电源。该设备是通过生物废料鸡毛和有机聚偏二氟乙烯(PVDF)聚合物的新型透气复合材料制造的,其中鸡毛纤维构成了 PVDF 的“微骨”,提高了其压电相含量、生物兼容性和结晶度。由于其出色的压力敏感性,所制造的电子皮肤可用于监测不同的人体生理信号,如身体运动、手指和关节弯曲、喉咙活动和脉搏率,具有出色的灵敏度。开发了一个无线系统来远程接收电子皮肤捕捉到的不同生理信号。我们还探索了该设备作为其他小型电子设备电源的功能。该压电能量收集装置可从施加于人体手指的最大输出电压约 28V 和面积功率密度 1.4μW·cm-2 中收集能量。该设备的能量收集性能得到改善与复合材料中诱导更高比例的电活性相有关。该设备易于加工、天然生物兼容性、卓越的压电性能、高压力灵敏度以及朝着无线传输捕获数据的方向发展,使其成为可穿戴生物电子贴片和电源的有前途的候选者。

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