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Interference characteristics in a fabry–perot cavity with graphene membrane for optical fiber pressure sensors

机译:带有石墨烯膜的光纤-压力传感器在法珀-珀罗腔中的干扰特性

摘要

Due to higher mechanical strength and ultra-thin thickness, graphene is used as a sensitive diaphragm in a Fabry–Perot cavity to improve the sensitivity of pressure sensors. In accordance with the working principle of Fabry–Perot interferometer, a load–deflection mathematical model of fiber-tip pressure sensor with graphene membrane is established based on the large deflection elastic theory of circular membrane. The effects of membrane parameters, including prestressing force and membrane layer number, on deflection mechanical behaviors are studied by using finite element method. Also, the effects of graphene membrane layer and incident light angle on the film reflectivity are obtained according to the refractive index characteristics of the membrane. The simulation results show that an approximate linear relation between loads and deflections exists in the simulated pressure range from 0 to 3.5 kPa, and a theoretical pressure sensitivity of 1,096 nm/kPa for a single-layered graphene membrane can be achieved. To estimate the performance of multi-layered graphene membrane as the diaphragm, an extremely thin 13-layered 125-μm diameter graphene diaphragm is fabricated on the tip of the fiber end, which forms a low finesse Fabry–Perot interferometer. The Fabry–Perot cavity with a length of 40 μm can exhibit a fringe visibility of approximate 0.56 with a measured membrane reflectivity of 1.49 %. The experimental results demonstrate that the use of graphene as diaphragm material would allow highly sensitive and miniature fiber-tip sensors.
机译:由于更高的机械强度和极薄的厚度,石墨烯被用作法布里-珀罗腔中的敏感膜片,以提高压力传感器的灵敏度。根据法布里-珀罗干涉仪的工作原理,基于圆形膜大挠度弹性理论,建立了石墨烯膜纤维尖端压力传感器的载荷-挠度数学模型。采用有限元方法研究了包括预应力和膜层数在内的膜参数对挠曲力学行为的影响。而且,根据膜的折射率特性,获得石墨烯膜层和入射光角度对膜反射率的影响。仿真结果表明,在0至3.5kPa的模拟压力范围内,载荷与挠度之间存在近似线性关系,对于单层石墨烯膜,理论压力灵敏度为1,096nm / kPa。为了评估多层石墨烯膜作为膜片的性能,在光纤末端的尖端制作了一个非常薄的13层直径为125-μm的石墨烯膜片,形成了低精细的Fabry-Perot干涉仪。长度为40μm的Fabry-Perot腔可显示约0.56的条纹可见度,测得的膜反射率为1.49%。实验结果表明,使用石墨烯作为隔膜材料将允许使用高度灵敏的微型光纤尖端传感器。

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