| Literature DB >> 31766466 |
Fangfang Wei1, Dejun Liu2, Arun Kumar Mallik1, Gerald Farrel1, Qiang Wu3, Gang-Ding Peng4, Yuliya Semenova1.
Abstract
In this paper we propose and investigate a novel magnetic field sensor based on a Tri-microfiber coupler combined with magnetic fluid and a fiber Bragg grating (FBG) in a ring. A sensitivity of 1306 pm/mT was experimentally demonstrated in the range of magnetic fields from 0 to 15 mT. The reflection peak in the output spectrum associated with the FBG serves as a reference point allowing to avoid ambiguity in determining the spectral shift induced by the magnetic field. Due to its high sensitivity at low magnetic fields, the proposed structure could be of high interest in low field biosensing applications that involve a magnetic field, such as magnetic manipulation or separation of biomolecules.Entities:
Keywords: fiber Bragg grating (FBG); magnetic field sensor; magnetic fluid; taper; tri-microfiber coupler
Year: 2019 PMID: 31766466 PMCID: PMC6928919 DOI: 10.3390/s19235100
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1(a) Schematic diagram of the proposed sensor; (b) Three fibers are slightly twisted together to ensure close proximity among them during the fusing and tapering process. (c) Sketch of a cross-section of the 3 × 3 tapered microfiber coupler (Tri-MFC) immersed in magnetic fluid.
Figure 2(a) Interference spectrum of polarization maintaining fiber - microfiber coupler (PMF-MFC) loop measured at port 2 without the fiber Bragg grating (FBG); (b) Combined spectra of the FBG and the PMF-MFC loop measured at port 2.
Figure 3Experimental output spectra for the sensing head immersed in a MF containing 12 nm-diameter Fe4O3 particles with concentration of 5 mg/mol at different magnetic field strengths ranging from 0 to 15 mT.
Figure 4Measured wavelength shift of the selected transmission dip (at 1536.3 nm) and the FBG reflection peak (1547.6 nm) against increasing magnetic field from 0 to 15 mT and then decreased back to zero.
Figure 5Periodic change in the position of spectral dips with initial positions at 1536.3 nm and 1559 nm when the applied magnetic field direction changes from 0 two 180 degrees.
Figure 6(a) External magnetic field direction is at 0° with respect to horizontal axis; (b) at 60° with respect to horizontal; (c) external magnetic field is vertical (90°); (d) external magnetic field direction creates 120° angle with the horizontal axis.
Comparison of properties of fiber-optic magnetic sensors reported in the literature.
| Scheme | Sensitivity | Vector | Temperature | Reference |
|---|---|---|---|---|
| Thin-core fiber-FBG | −0.78 dB/m | No | Yes | [ |
| 2 × 2 MFC Sagnac | −488 pm/mT | Yes | No | [ |
| MFC and FBG based fiber laser | 102 pm/mT | No | Yes | [ |
| Surface Plasmon Resonance (SPR) | 10 nm/mT | No | No | [ |
| SPR | 597.8 pm/Oe | Yes | No | [ |
| SPR | 0.692 nm/Oe | Yes | No | [ |
| Cascaded fiber hetero structures | 65.9 pm/Oe | No | Yes | [ |
| Photonic crystal fiber | 384 pm/Oe | No | No | [ |
| Microfiber Knot Resonator | 277 pm/mT | No | No | [ |
| 3 × 3 MFC Sagnac | 1306 pm/mT | Yes | Yes | This work |