Rao Jie, Pu Shengli, Yao Tianjun, Su Delong
College of Science, University of Shanghai for Science and Technology, Shanghai 200093, China.
Shanghai Key Laboratory of Modern Optical System, University of Shanghai for Science and Technology, Shanghai 200093, China.
Sensors (Basel). 2017 Jul 7;17(7):1590. doi: 10.3390/s17071590.
An ultrasensitive magnetic field sensor is proposed and investigated experimentally. The no-core fiber is fusion-spliced between two pieces of single-mode fibers and then immersed in magnetic fluid with an appropriate value of refractive index. Under the refractive-index-matched coupling condition, the guided mode becomes leaky and a coupling wavelength dip in the transmission spectrum of the structure is observed. The coupling wavelength dip is extremely sensitive to the ambient environment. The excellent sensitivity to the refractive index is measured to be 116.681 μm/RIU (refractive index unit) in the refractive index range of 1.45691-1.45926. For the as-fabricated sensors, the highest magnetic field sensing sensitivities of 6.33 and 1.83 nm/mT are achieved at low and high fields, respectively. The sensitivity is considerably enhanced compared with those of previously designed, similar structures.
提出了一种超灵敏磁场传感器并进行了实验研究。将无芯光纤熔接在两根单模光纤之间,然后浸入具有适当折射率值的磁流体中。在折射率匹配耦合条件下,导模变为泄漏模,并且在该结构的传输光谱中观察到耦合波长凹陷。该耦合波长凹陷对周围环境极其敏感。在1.45691 - 1.45926的折射率范围内,测得对折射率的优异灵敏度为116.681μm/RIU(折射率单位)。对于所制备的传感器,在低场和高场分别实现了6.33和1.83nm/mT的最高磁场传感灵敏度。与先前设计的类似结构相比,灵敏度有了显著提高。