电子表皮纹身-概述

Kashish Srivastava, Shilpa Choudhary, Abhishek Sharma, A. Mishra
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引用次数: 0

摘要

使用柔韧和可拉伸的生物医学可穿戴设备,可以长期监测身体自然运动过程中的皮肤感觉,从而实现各种疾病的早期诊断和治疗。在本提案中,将简要介绍皮肤集成生物医学电子学。这些装置,也被称为“皮肤电子”、“表皮电子”或“电子纹身”,讨论了它们的材料特性、集成方法和潜在应用。该提案旨在提供该主题的全面概述,以更好地了解该技术的潜力。通过使用柔韧和可拉伸的可穿戴生物医学设备,可以长时间监测身体自然运动过程中的皮肤感觉,从而实现各种疾病的早期发现和治疗。这些设备背后的技术被称为皮肤集成生物医学电子产品,已经被冠以几个名字,比如“皮肤电子产品”、“表皮电子产品”或“电子纹身”。本提案讨论了这些器件的材料特性、集成方法和潜在应用。该提案的主要目标是提供该技术的概述,以更好地理解其潜在影响。表皮传感器(Epidermal sensors)是一种紧贴皮肤表皮,执行各种功能的电子设备,因其纤细和精致而越来越受欢迎。为了确保保形接触和用户舒适度,这些设备应该具有类似于皮肤表皮层的机械性能。我们的研究介绍了一种由石墨烯制成的新型传感器,可以在多种模式下工作。它采用了一种成本高、效率高的“湿转移、干处理”方法,这种方法保持了石墨烯电子纹身(GET)和皮肤界面阻抗之间的关系,类似于医学上使用的Ag/AgCl凝胶电极。GET可以像临时纹身一样直接放在人体皮肤上,它的开环结构允许它在几分钟内保持附着在皮肤层上,而不会破裂或分层。由石墨烯制成的电子表皮纹身可用于检查心电图、肌电图、脑电图和皮肤水合模式。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electronics Epidermal Tattoo – An overview
The use of pliable and stretchable biomedical wearable devices has made long-term monitoring of skin sensations during natural body movements possible, leading to early diagnosis and treatment of various diseases. In this proposal, a brief introduction to skin-integrated biomedical electronics will be presented. These devices, also referred to as "skin-like electronics," "epidermal electronics," or "electronic tattoos," are discussed with regard to their material properties, integration methods, and potential applications. The proposal aims to provide a comprehensive overview of the topic to better understand the technology's potential.By using wearable biomedical devices that are pliable and stretchable, it is possible to monitor skin sensations during natural body movements over a prolonged period, enabling the early detection and treatment of various diseases. The technology behind these devices, known as skin-integrated biomedical electronics, has been dubbed with several names such as "skin-like electronics," "epidermal electronics," or "electronic tattoos." These devices are discussed in terms of their material properties, integration methods, and potential applications in this proposal. The proposal's primary objective is to provide an overview of this technology to better comprehend its potential impact.Epidermal sensors, which are becoming increasingly popular due to their slimness and delicacy, are a type of electronic device that conforms to the skin's epidermis to perform various functions. To ensure both conformal contact and user comfort, these devices should have mechanical properties similar to those of the skin's epidermis layer. Our research introduces a new type of sensor made from graphene that can work in multiple modes. It is created using a cost and time-effective "wet transfer, dry processing" method that maintains a relationship between the graphene electronic tattoo (GET) and skin interface impedance similar to that of medically-used Ag/AgCl gel electrodes. GET can be placed directly on human skin like a temporary tattoo, and its open loop configuration allows it to remain attached to the skin layer for several minutes without breaking or delaminating. An electronic epidermal tattoo made from graphene can be used to examine ECG, EMG, EEG, and skin hydration modes.
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