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金纳米线海绵电化学可舒适、无线地进行可渗透的可穿戴汗液分析。

Gold Nanowire Sponge Electrochemistry for Permeable Wearable Sweat Analysis Comfortably and Wirelessly.

机构信息

Department of Chemical & Biological Engineering, Faculty of Engineering, Monash University, Clayton 3800, VIC, Australia.

School of Biomedical Engineering, University of Sydney, Darlington 2008, NSW, Australia.

出版信息

ACS Sens. 2024 Oct 25;9(10):5414-5424. doi: 10.1021/acssensors.4c01635. Epub 2024 Sep 19.

Abstract

Electrochemistry-based wearable and wireless sweat analysis is emerging as a promising noninvasive method for real-time health monitoring by tracking chemical and biological markers without the need for invasive blood sampling. It offers the potential to remotely monitor human sweat conditions in relation to metabolic health, stress, and electrolyte balance, which have implications for athletes, patients with chronic conditions, and individuals for the early detection and management of health issues. The state-of-the-art mainstream technology is dominated by the concept of a wearable microfluidic chip, typically based on elastomeric PDMS. While outstanding sensing performance can be realized, the design suffers from the poor permeability of PDMS, which could cause skin redness or irritation. Here, we introduce an omnidirectionally permeable, deformable, and wearable sweat analysis system based on gold nanowire sponges. We demonstrate the concept of all-in-one soft sponge electrochemistry, where the working, reference, and counter electrodes and electrolytes are all integrated within the sponge matrix. The intrinsic porosity of sponge in conjunction with vertically aligned gold nanowire electrodes gives rise to a high electrochemically active surface area of ∼67 cm. Remarkably, this all-in-one sponge-based electrochemical system exhibited stable performance under a pressure of 10 kPa and 300% omnidirectional strain. The gold sponge biosensing electrodes could be sandwiched between two biocompatible sweat pads, which can serve as natural sweat collection and outflow layers. This naturally biocompatible and permeable platform can be integrated with wireless communication circuits, leading to a wireless sweat analysis system for the real-time monitoring of glucose, lactate, and pH during exercise.

摘要

基于电化学的可穿戴式和无线汗液分析技术正成为一种有前途的非侵入性方法,通过跟踪化学和生物标志物,无需进行侵入性的血液采样,即可实现实时健康监测。它有潜力远程监测与代谢健康、压力和电解质平衡相关的人体汗液状况,这对于运动员、慢性病患者以及个体的健康问题的早期检测和管理具有重要意义。目前主流的先进技术基于可穿戴式微流控芯片的概念,通常基于弹性 PDMS。虽然可以实现出色的传感性能,但这种设计受到 PDMS 渗透性差的限制,这可能会导致皮肤发红或刺激。在这里,我们介绍了一种基于金纳米线海绵的全方位渗透、可变形和可穿戴的汗液分析系统。我们展示了全合一软海绵电化学的概念,其中工作电极、参比电极和对电极以及电解质都集成在海绵基质内。海绵的固有多孔性与垂直排列的金纳米线电极相结合,产生了约 67 cm²的高电化学活性表面积。值得注意的是,这种全合一的海绵电化学系统在 10 kPa 的压力和 300%的全方位应变下表现出稳定的性能。金海绵生物传感电极可以夹在两个生物相容性的汗液垫之间,作为天然的汗液收集和流出层。这种天然的生物相容性和渗透性平台可以与无线通信电路集成,从而实现用于运动期间实时监测葡萄糖、乳酸和 pH 值的无线汗液分析系统。

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