| Literature DB >> 31795072 |
Binbin Yan1, Lei Sun1, Yanhua Luo2, Liwei Yang3, Haifeng Qi4, Xiao Chen5, Kuiru Wang1, Jinhui Yuan1, Xinzhu Sang1, Chang Wang4, Pengfei Lu1, Gang-Ding Peng2.
Abstract
In this paper, a temperature self-compensated refractive index sensor based on fiber Bragg grating (FBG) and the ellipsoid structure is demonstrated. The ellipsoid can excite the cladding modes and recouple them into the fiber core. Two well-defined wavelength bands are observed in the reflection spectrum of the proposed sensor, i.e., the Bragg resonant peak and the cladding resonant peaks. By measuring the wavelength shift of the cladding resonant peak, the surrounding refractive index (SRI) can be determined, and the wavelength shift of the Bragg resonant peak can be used as a reliable reference to self-compensate the temperature variation (temperature sensitivity of 10.76 pm/°C). When the SRI changes from 1.3352 to 1.3722, the cladding resonant peak redshifts linearly with an average sensitivity of 352.6 pm/RIU (refractive index unit). When the SRI changes from 1.3722 to 1.4426, an exponential redshift is observed with a maximum sensitivity of 4182.2 pm/RIU. Especially, the sensing performance is not very reliant on the distance between the FBG and the ellipsoid, greatly improving the ease of the fabrication.Entities:
Keywords: ellipsoid; fiber Bragg grating; refractive index sensor; temperature self-compensated
Year: 2019 PMID: 31795072 PMCID: PMC6928946 DOI: 10.3390/s19235211
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Sensing scheme of the proposed structure. The blue color structure shows the proposed sensor head.
Figure 2(a–d) Schematic diagram of the fabrication steps. (e) Microscope image of the ellipsoid structure.
Figure 3(a) Reflection (blue) and transmission (black) spectra of fiber Bragg grating (FBG) cascading the ellipsoid monitored during FBG fabrication with the input direction from the FBG side. (b) Reflection spectra of FBG cascading the ellipsoid with the input from the ellipsoid side. The distance d between the ellipsoid and the FBG is 8 mm.
Figure 4(a) Transmission spectra of FBG cascading the ellipsoid with varied distance d. (b) Reflection spectra of FBG cascading the ellipsoid with d = 6 mm (black) and 10 mm (red).
Figure 5The schematic diagram of the experimental setup.
Figure 6(a) Measured spectral responses to different surrounding refractive index (SRI). (b) Measured Bragg resonant peak in response to different SRI. (c) Measured cladding resonant peak in response to different SRI.
Figure 7Measured wavelength shifts of cladding and Bragg resonant peaks vs. SRI for the proposed sensor.
Figure 8(a) Reflection spectra of the proposed sensor (d = 4 mm) at different temperatures. (b) Measured wavelength shift vs. temperature for the FBG and ellipsoid structure.
Figure 9Measured wavelength shift of cladding resonant peak vs. SRI (a) and temperature (b) for the proposed sensor with different d.
Figure 10(a) SRI repeatability test on different days. Note: the result of n = 1.3858 was obtained only on the first day, as the index solution was damaged after the first day’s experiment. (b) Temperature repeatability test on different days.
Figure 11(a) Measured refractive index vs. actual refractive index. (b) Measured error for each known SRI.