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用于便携式和远程痕量生物标志物检测的可拉伸自供电传感装置的设计。

Design of stretchable and self-powered sensing device for portable and remote trace biomarkers detection.

机构信息

State Key Laboratory of Optoelectronic Materials and Technologies, Guangdong Province Key Laboratory of Display Material and Technology, School of Electronics and Information Technology, Sun Yat-sen University, 510275, Guangzhou, China.

Institute for New Energy Materials and Low Carbon Technologies, School of Materials Science and Engineering, Tianjin University of Technology, 300384, Tianjin, China.

出版信息

Nat Commun. 2023 Aug 26;14(1):5221. doi: 10.1038/s41467-023-40953-z.

Abstract

Timely and remote biomarker detection is highly desired in personalized medicine and health protection but presents great challenges in the devices reported so far. Here, we present a cost-effective, flexible and self-powered sensing device for HS biomarker analysis in various application scenarios based on the structure of galvanic cells. The sensing mechanism is attributed to the change in electrode potential resulting from the chemical adsorption of gas molecules on the electrode surfaces. Intrinsically stretchable organohydrogels are used as solid-state electrolytes to enable stable and long-term operation of devices under stretching deformation or in various environments. The resulting open-circuit sensing device exhibits high sensitivity, low detection limit, and excellent selectivity for HS. Its application in the non-invasive halitosis diagnosis and identification of meat spoilage is demonstrated, emerging great commercial value in portable medical electronics and food security. A wireless sensory system has also been developed for remote HS monitoring with the participation of Bluetooth and cloud technologies. This work breaks through the shortcomings in the traditional chemiresistive sensors, offering a direction and theoretical foundation for designing wearable sensors catering to other stimulus detection requirements.

摘要

在个性化医疗和健康保护中,人们非常希望能够及时、远程地检测生物标志物,但这在目前报道的设备中带来了巨大的挑战。在这里,我们基于原电池的结构,为各种应用场景中的 HS 生物标志物分析,展示了一种具有成本效益、灵活和自供电的传感设备。传感机制归因于电极表面上气体分子的化学吸附导致电极电位的变化。本征可拉伸有机水凝胶被用作固态电解质,以使设备在拉伸变形或各种环境下能够稳定和长期运行。由此产生的开路传感设备对 HS 表现出高灵敏度、低检测限和出色的选择性。它在非侵入性口臭诊断和肉类变质识别中的应用得到了证明,在便携式医疗电子和食品安全领域具有巨大的商业价值。还开发了一个带有蓝牙和云技术参与的无线传感系统,用于远程 HS 监测。这项工作突破了传统化学电阻传感器的缺点,为设计满足其他刺激检测要求的可穿戴传感器提供了方向和理论基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/be61/10460451/cbbb8b0c06f7/41467_2023_40953_Fig1_HTML.jpg

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