Optics Department, Faculty of Physics, University Complutense of Madrid, Ciudad Universitaria s/n, 28040 Madrid, Spain.
Optics Department, Faculty of Optics and Optometry, University Complutense of Madrid, Arcos de Jalón 118, 28037 Madrid, Spain.
Sensors (Basel). 2023 Apr 19;23(8):4098. doi: 10.3390/s23084098.
Graphene-based materials have been increasingly incorporated to optical fiber plasmonic sensors due to the peculiar physical and chemical properties of these materials (hardness and flexibility, high electrical and thermal conductivity, and very good adsorption for many substances, etc.). In this paper, we theoretically and experimentally showed how the addition of graphene oxide (GO) to optical fiber refractometers permits the development of surface plasmon resonance (SPR) sensors with very good characteristics. We used doubly deposited uniform-waist tapered optical fibers (DLUWTs) as supporting structures because of their already proven good performance. The presence of GO as an effective third layer is useful to tune the wavelength of the resonances. In addition, the sensitivity was improved. We depict the procedures for the production of the devices and characterize the GO+DLUWTs produced in this way. We also showed how the experimental results are in agreement with the theoretical predictions and used these to estimate the thickness of deposited GO. Finally, we compared the performance of our sensors with other ones that have been recently reported, showing that our results are among the best reported. Using GO as the medium in contact with the analyte, in addition to the good overall performance of devices, permit consideration of this option as an interesting possibility for the future development of SPR-based fiber sensors.
基于石墨烯的材料由于其独特的物理和化学性质(硬度和柔韧性、高导电性和导热性以及对许多物质的非常好的吸附性等),已越来越多地被纳入光纤等离子体传感器中。在本文中,我们从理论和实验上展示了在光纤折射率计中添加氧化石墨烯(GO)如何能够开发出具有非常好特性的表面等离子体共振(SPR)传感器。我们使用双沉积均匀腰部锥形光纤(DLUWT)作为支撑结构,因为它们已经证明了良好的性能。GO 作为有效第三层的存在有助于调整共振波长。此外,灵敏度也得到了提高。我们描述了器件的制作过程,并对以这种方式制作的 GO+DLUWT 进行了表征。我们还展示了实验结果如何与理论预测相符,并利用这些结果估计了沉积 GO 的厚度。最后,我们将我们的传感器与最近报道的其他传感器的性能进行了比较,表明我们的结果是报告中最好的之一。使用与分析物接触的 GO 作为介质,除了器件的整体性能良好外,还可以考虑将其作为基于 SPR 的光纤传感器未来发展的一种有趣可能性。