State Key Laboratory of Precision Measuring Technology and Instruments, School of Precision Instruments and Optoelectronics Engineering, Tianjin University, Tianjin 300072, China.
Nanoscale Horiz. 2020 Jun 1;5(6):934-943. doi: 10.1039/d0nh00098a. Epub 2020 Apr 17.
Microwave sensors based on microstrip antennas are promising as wearable devices because of their flexibility and wireless communication compatibility. However, their sensitivity is limited due to the reduced sensor size and the potential of biochemical monitoring needs to be explored. In this work, we present a new concept to enhance the microwave signals using nanostrip-based metamaterials. The introduction of the nanostrip structures was achieved by theory and simulations. Experiments prove their enhancement of the electric field and sensing response in the characteristic gigahertz (GHz) wave band. Ordered nanostrips were fabricated on a plastic substrate through a simple nanoscale printing approach. Glucose oxidase is directly doped into the nanostrips, which enables a flexible wearable enzymatic biosensor for glucose sensing. Sensing experiments demonstrated that the nanostrip biosensor gives excellent performance for glucose detection, including high sensitivity, fast response, low detection limit, high affinity, and low power consumption. The applicability of the nanostrip-based sensor as a wearable epidermal device for real-time noninvasive monitoring of glucose in sweat is verified as well.
基于微带天线的微波传感器因其灵活性和无线通信兼容性而有望成为可穿戴设备。然而,由于传感器尺寸减小,其灵敏度受到限制,需要探索其在生化监测方面的潜力。在这项工作中,我们提出了一种利用基于纳米带的超材料增强微波信号的新概念。纳米带结构的引入是通过理论和模拟实现的。实验证明了它们在特征千兆赫(GHz)波段增强了电场和传感响应。有序纳米带通过简单的纳米级打印方法在塑料基板上制造。葡萄糖氧化酶直接掺杂到纳米带中,这使得能够制造用于葡萄糖感测的灵活可穿戴酶生物传感器。传感实验表明,纳米带生物传感器在葡萄糖检测方面具有出色的性能,包括高灵敏度、快速响应、低检测限、高亲和力和低功耗。还验证了基于纳米带的传感器作为用于实时无创监测汗液中葡萄糖的可穿戴表皮设备的适用性。