| Literature DB >> 35630125 |
Na Zhao1, Zelin Wang1, Zhongkai Zhang1, Qijing Lin1,2, Kun Yao1, Liangquan Zhu1, Bian Tian1, Libo Zhao1, Ping Yang1, Zhuangde Jiang1.
Abstract
An all-fiber temperature and refractive dual-parameter-sensing Michelson interferometer is designed based on the waist-enlarged bitaper. At 5 mm from the fiber end, the waist-enlarged bitaper is manually spliced and the probe is formed. Since the input light encounters the waist-enlarged bitaper, it will excite high-order modes to transmit in the fiber cladding, and there will be an optical path difference between the basic mode and the higher-order mode. The light transmitted in the core and cladding is reflected upon encountering the fiber end face and the interference occurs due to the optical path difference between basic mode and higher-order mode. Changes in temperature and refractive index at the fiber probe can be detected by monitoring the interference fringes. The refractive response sensitivity is -191.06 dBm/RIU from 1.351 RIU to 1.4027 RIU, and the temperature response sensitivity is 0.12 nm/°C from 11 °C to 98 °C. Through the sensitivity matrix equation, the superimposed refractive index and temperature signals can be effectively demodulated. The sensor has the advantages of multi-parameter measurement, compact structure, low cost, easy fabrication and high reliability.Entities:
Keywords: Michelson interferometer; fiber-optic sensors; multi-parameter sensing; refractive index; temperature
Year: 2022 PMID: 35630125 PMCID: PMC9144061 DOI: 10.3390/mi13050658
Source DB: PubMed Journal: Micromachines (Basel) ISSN: 2072-666X Impact factor: 3.523
Figure 1Schematic diagram of Michelson interferometer.
Figure 2The optical fiber waist-enlarged bitaper under microscope.
Figure 3Interferometric spectra of sensors with different lengths.
Figure 4Relationship between interference period and interference arm length in the 80 nm spectral range.
Figure 5Spatial spectrum analysis of sensors with different lengths.
Relationship between mode order and refractive index difference Δn.
| X |
| Δ |
|---|---|---|
| 1 | 1.4658679 | 0 |
| 2 | 1.4627498 | 0.0031181 |
| 3 | 1.4625833 | 0.0032846 |
| 4 | 1.4623038 | 0.0035641 |
| 5 | 1.4619147 | 0.0039532 |
| 6 | 1.4614194 | 0.0044485 |
| 7 | 1.4608213 | 0.0050466 |
| 8 | 1.4601245 | 0.0057434 |
| 9 | 1.4593324 | 0.0065355 |
Figure 6Optical mode distribution diagram of optical fiber section.
Figure 7Refractive index sensing experimental device schematic diagram.
Figure 8The spectra under different ambient refractive indices.
Figure 9The refractive index response of the Michelson interferometer.
Figure 10Temperature sensing experimental device schematic diagram.
Figure 11The spectra under different ambient temperatures.
Figure 12The temperature response of the Michelson interferometer.