Lee Jimin, Liberty Leel Mazal, Soltis Ira, Kwon Kangkyu, Chong David, Kwon Youngjin, Yeo Woon-Hong
George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, United States.
Wearable Intelligent Systems and Healthcare Center (WISH Center) at the Institute for Matter and Systems, Georgia Institute of Technology, Atlanta, Georgia 30332, United States.
ACS Appl Mater Interfaces. 2025 Jun 25;17(25):36345-36355. doi: 10.1021/acsami.5c03558. Epub 2025 May 10.
Sweat electrolyte analysis using potentiometric systems is a promising approach for continuous health monitoring. However, despite its potential, temperature-induced measurement errors remain a critical challenge, and, to our knowledge, no study has effectively addressed this issue for accurate potentiometric sensing during physiological activities. Here, we present a temperature-compensated flexible microsensor integrated with a wireless potentiometric measurement circuit for real-time sweat analysis. The wearable system features an array of microsensors for simultaneous detection of pH, Na, K, and skin temperature, enabling real-time dynamic temperature compensation. A PEDOT:PSS/graphene ion-to-charge transducer enhances sensitivity through superior electron acceptor properties and an expanded electroactive surface area. The incorporation of a Nafion top layer ensures 2-week-long stability by facilitating selective cation transport while mitigating sensor degradation. With temperature compensation, the wireless wearable device measures an accurate level of electrolytes under extreme temperature variations (8 to 56 °C), including outdoor exercises and exposure to dry saunas, to assess the necessity of temperature correction. This work collectively establishes a robust, high-performance platform for continuous monitoring of sweat biomarkers, thus advancing wearable diagnostic technology for personalized healthcare applications.
使用电位系统进行汗液电解质分析是一种很有前景的连续健康监测方法。然而,尽管其具有潜力,但温度引起的测量误差仍然是一个关键挑战,据我们所知,尚无研究有效解决这一问题以实现生理活动期间的准确电位传感。在此,我们展示了一种集成无线电位测量电路的温度补偿柔性微传感器,用于实时汗液分析。该可穿戴系统具有一系列微传感器,可同时检测pH值、钠、钾和皮肤温度,实现实时动态温度补偿。PEDOT:PSS/石墨烯离子到电荷换能器通过卓越的电子受体特性和扩大的电活性表面积提高了灵敏度。纳滤顶层的加入通过促进选择性阳离子传输同时减轻传感器降解,确保了长达两周的稳定性。通过温度补偿,该无线可穿戴设备可在极端温度变化(8至56°C)下测量准确的电解质水平,包括户外运动和暴露于干蒸房中,以评估温度校正的必要性。这项工作共同建立了一个强大的高性能平台,用于连续监测汗液生物标志物,从而推动可穿戴诊断技术在个性化医疗保健应用中的发展。