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用于与皮肤接口的电子设备的热安全系统的响应材料和机制。

Responsive materials and mechanisms as thermal safety systems for skin-interfaced electronic devices.

机构信息

Querrey Simpson Institute for Bioelectronics, Northwestern University, Evanston, IL, 60208, USA.

Department of Mechanical Science and Engineering, University of Illinois at Urbana-Champaign, Urbana, IL, 61801, USA.

出版信息

Nat Commun. 2023 Feb 23;14(1):1024. doi: 10.1038/s41467-023-36690-y.

Abstract

Soft, wireless physiological sensors that gently adhere to the skin are capable of continuous clinical-grade health monitoring in hospital and/or home settings, of particular value to critically ill infants and other vulnerable patients, but they present risks for injury upon thermal failure. This paper introduces an active materials approach that automatically minimizes such risks, to complement traditional schemes that rely on integrated sensors and electronic control circuits. The strategy exploits thin, flexible bladders that contain small volumes of liquid with boiling points a few degrees above body temperature. When the heat exceeds the safe range, vaporization rapidly forms highly effective, thermally insulating structures and delaminates the device from the skin, thereby eliminating any danger to the skin. Experimental and computational thermomechanical studies and demonstrations in a skin-interfaced mechano-acoustic sensor illustrate the effectiveness of this simple thermal safety system and suggest its applicability to nearly any class of skin-integrated device technology.

摘要

柔软、无线的生理传感器可以轻柔地贴合皮肤,能够在医院和/或家庭环境中进行连续的临床级健康监测,对重症婴儿和其他脆弱患者特别有价值,但它们在热失效时存在受伤的风险。本文介绍了一种主动材料方法,可以自动最小化这种风险,以补充传统的依赖集成传感器和电子控制电路的方案。该策略利用包含少量沸点比体温高几度的液体的薄而灵活的气囊。当热量超过安全范围时,蒸发会迅速形成高效、热绝缘的结构,并使装置从皮肤分层,从而消除对皮肤的任何危险。在皮肤接口的机械声传感器中的实验和计算热机械研究和演示说明了这种简单的热安全系统的有效性,并表明其适用于几乎任何一类与皮肤集成的设备技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2678/9950147/d134c60e51a0/41467_2023_36690_Fig1_HTML.jpg

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