Tang Yitian, Zhong Lijie, Zhang Yirong, Mo Xiaocheng, Bao Yu, Ma Yingming, Wang Wei, Han Dongxue, Gan Shiyu, Niu Li
Guangdong Engineering Technology Research Center for Photoelectric Sensing Materials & Devices, Guangzhou Key Laboratory of Sensing Materials & Devices, Center for Advanced Analytical Science, School of Chemistry and Chemical Engineering, School of Economics and Statistics, Guangzhou University, Guangzhou 510006, China.
Guangdong Engineering Technology Research Center for Photoelectric Sensing Materials & Devices, Guangzhou Key Laboratory of Sensing Materials & Devices, Center for Advanced Analytical Science, School of Chemistry and Chemical Engineering, School of Economics and Statistics, Guangzhou University, Guangzhou 510006, China.
Sci Bull (Beijing). 2023 Oct 14. doi: 10.1016/j.scib.2023.10.011.
Noninvasive and continuous monitoring of electrolytes in biofluids based on wearable biotechnology provides extensive health-related physiological information. The state-of-the-art wearable bioelectronic ion sensors depend on the organic ionophore-based solid-contact structure of potentiometric ion-selective electrodes. This structure contains two functional sensing layers, i.e., a solid contact (ion-to-electron signal transduction) and an ionophore-containing ion-selective membrane (ISM, ion recognition). However, the potential drift, biotoxicity, and expensive organic ionophores complicate practical wearable applications. These challenges intrinsically originate from the ISM. Herein, an ISM-free wearable ion sensor based on mixed electronic-ionic conductors of tungsten bronzes is reported. These materials can serve as a bifunctional sensing layer for simultaneous ion-to-electron transduction through the redox reaction of W and ion recognition through crystal ion exchange. The K- and Na-adjusted WO disclosed Nernstian responses toward NH and H, respectively. The selectivity is comparable to or even better than organic ionophores, such as ammonia ionophore of nonactin. Further, the on-body monitoring of sweat ammonia and pH was realized using an integrated ISM-free flexible sensor. Therefore, this work offers an ISM-free concept and emphasizes the importance of developing next-generation ISM-free wearable bioelectronic ion sensors.
基于可穿戴生物技术对生物流体中的电解质进行无创连续监测可提供大量与健康相关的生理信息。目前最先进的可穿戴生物电子离子传感器依赖于基于有机离子载体的电位离子选择性电极的固体接触结构。这种结构包含两个功能传感层,即固体接触层(离子到电子信号转导)和含离子载体的离子选择性膜(ISM,离子识别)。然而,电位漂移、生物毒性和昂贵的有机离子载体使实际的可穿戴应用变得复杂。这些挑战本质上源于离子选择性膜。在此,报道了一种基于钨青铜混合电子 - 离子导体的无离子选择性膜可穿戴离子传感器。这些材料可作为双功能传感层,通过钨的氧化还原反应实现离子到电子的同时转导,并通过晶体离子交换实现离子识别。经钾和钠调整的氧化钨分别对铵离子和氢离子呈现能斯特响应。其选择性与诸如非actin铵离子载体等有机离子载体相当甚至更好。此外,使用集成的无离子选择性膜柔性传感器实现了对汗液中氨和pH值的体表监测。因此,这项工作提供了一种无离子选择性膜的概念,并强调了开发下一代无离子选择性膜可穿戴生物电子离子传感器的重要性。