Azad Saeed, Mishra Satyendra Kumar, Rezaei Ghasem, Izquierdo Ricardo, Ung Bora
Department of Electrical Engineering, École de technologie supérieure, Montreal, H3C 1K3, Canada.
Department of Electrical Engineering, LACIME, Montreal, H3C 1K3, Canada.
Sci Rep. 2022 Jun 11;12(1):9672. doi: 10.1038/s41598-022-13873-z.
A fast response time (0.1 s) magnetic field sensor has been demonstrated utilizing a photonic crystal fiber with nano-size air holes infiltrated with polyethylene glycol based magnetic fluid. The effect of magnetic nanoparticles concentration in the fluid on the magneto-optical sensor performance and its dependence under varying magnetic-field loads was investigated in detail. In particular, the sensor response was analytically modelled with a Langevin function with a good fit (R[Formula: see text]0.996). A threshold sensing point as low as 20 gauss was recorded and a detection range of 0-350 gauss was demonstrated by means of optical transmission measurements. The experimental results were validated by theory using a waveguide light transmission model fed by finite-element method simulations of the principal guided modes in the infiltrated fiber sensor. The simple interrogation scheme, high sensitivity and quick response time makes the proposed hybrid fiber-optic magneto-fluidic probe a promising platform for novel biochemical sensing applications.
已展示了一种响应时间快(0.1秒)的磁场传感器,它利用了一种光子晶体光纤,该光纤具有填充有聚乙二醇基磁流体的纳米尺寸气孔。详细研究了流体中磁性纳米颗粒浓度对磁光传感器性能的影响及其在不同磁场负载下的依赖性。特别是,用朗之万函数对传感器响应进行了分析建模,拟合效果良好(R[公式:见原文]0.996)。记录到低至20高斯的阈值传感点,并通过光传输测量展示了0 - 350高斯的检测范围。利用由渗透光纤传感器中主导模的有限元方法模拟提供的波导光传输模型,从理论上验证了实验结果。这种简单的询问方案、高灵敏度和快速响应时间,使得所提出的混合光纤磁流体探头成为新型生化传感应用的一个有前景的平台。