Ding Qiongling, Wang Hao, Zhou Yubin, Zhang Zhicheng, Luo Yibing, Wu Zixuan, Yang Le, Xie Ruijie, Yang Bo-Ru, Tao Kai, Pan Shaowu, Liu Fei, Fu Jun, Huo Fengwei, Wu Jin
State Key Laboratory of Optoelectronic Materials and Technologies and the Guangdong Province Key Laboratory of Display Material and Technology, School of Electronics and Information Technology, Sun Yat-sen University, Guangzhou, 510275, P. R. China.
State Key Laboratory of Transducer Technology, Shanghai, 200050, P. R. China.
Adv Mater. 2025 Jun;37(24):e2502369. doi: 10.1002/adma.202502369. Epub 2025 May 6.
The development of self-powered, flexible, and multi-function sensors is highly anticipated in wearable electronics, however, it remains a daunting challenge to identify different signals based on a single device with singular sensing material without algorithmic support. Here, a smart adaptable hydrogel is developed by co-introducing two ions with vastly different hydrophilicity for the construction of an electrochemically self-powered, flexible, and reversibly switchable difunctional chemosensor with a metal-air battery structure. The prepared hydrogel can readily switch between water-rich and water-deficient states for crosstalk-free detection of oxygen and humidity respectively, since O gas and water molecules can directly participate in the oxygen reduction reaction in the device and act alone as limiting reactants and catalysts to affect the reaction rate under different hydrogel states. The resulting sensor demonstrates breakthrough O and humidity sensing performance with sensitivities as high as 4170.5%/% and 380.2%/% RH in water-rich and water-deficient states, respectively, and ultrawide detection ranges. Thanks to these, the devices can be applied for real-time and remote monitoring of ambient oxygen, transcutaneous oxygen pressure changes, respiration, and skin moisture by combining with wireless communication technology, and therefore have important application prospects in the fields of safety, health management, and non-contact human-machine interaction.
自供电、柔性和多功能传感器的发展在可穿戴电子设备中备受期待,然而,在没有算法支持的情况下,基于具有单一传感材料的单个设备来识别不同信号仍然是一项艰巨的挑战。在此,通过共同引入两种亲水性差异极大的离子,开发了一种智能自适应水凝胶,用于构建具有金属空气电池结构的电化学自供电、柔性且可逆切换的双功能化学传感器。制备的水凝胶能够在富水和缺水状态之间轻松切换,分别用于无串扰地检测氧气和湿度,因为氧气气体和水分子可以直接参与设备中的氧还原反应,并分别作为限制反应物和催化剂单独作用,以影响不同水凝胶状态下的反应速率。所得传感器在富水和缺水状态下分别展现出高达4170.5%/%和380.2%/%RH的突破性氧气和湿度传感性能以及超宽检测范围。基于此,通过与无线通信技术相结合,这些设备可用于实时远程监测环境氧气、经皮氧分压变化、呼吸和皮肤湿度,因此在安全、健康管理和非接触人机交互领域具有重要的应用前景。