Department of Electrical Engineering, University of Nebraska–Lincoln, Lincoln, Nebraska 68588-0511, USA.
Opt Lett. 2012 Nov 15;37(22):4672-4. doi: 10.1364/ol.37.004672.
Intensity-based demodulation of extrinsic Fabry-Perot interferometric (EFPI) fiber-optic sensors requires the light wavelength to be on the quadrature point of the interferometric fringes for maximum sensitivity. In this Letter, we propose a novel and remote operating-point tuning method for EFPI fiber-optic sensors using microstructured fibers (MFs) and gas pressure. We demonstrated the method using a diaphragm-based EFPI sensor with a microstructured lead-in fiber. The holes in the MF were used as gas channels to remotely control the gas pressure inside the Fabry-Perot cavity. Because of the deformation of the diaphragm with gas pressure, the cavity length and consequently the operating point can be remotely tuned for maximum sensitivity. The proposed operating-point tuning method has the advantage of reduced complexity and cost compared to previously reported methods.
基于强度的外差法光纤 Fabry-Perot 干涉(EFPI)传感器解调要求光波长处于干涉条纹的正交点,以获得最大灵敏度。在本信中,我们提出了一种使用微结构光纤(MF)和气压的新型远程工作点调谐方法,用于 EFPI 光纤传感器。我们使用基于膜片的 EFPI 传感器和微结构引入光纤演示了该方法。MF 中的孔用作气体通道,以远程控制 Fabry-Perot 腔体内的气压。由于膜片随气压的变形,腔长和工作点可以远程调谐以获得最大灵敏度。与以前报道的方法相比,所提出的工作点调谐方法具有降低复杂性和成本的优势。