| Literature DB >> 31390826 |
Weihao Yuan1, Hao Qian1, Yi Liu2, Zhuo Wang1, Changyuan Yu3.
Abstract
Here we report on a miniaturized optical interferometer in one fiber based on two mismatched nodes. The all-fiber structure shows stable performance of temperature and humidity sensing. For temperature sensing in large ranges, from 40 to 100 °C, the sensor has a sensitivity of 0.24 dB/°C, and the adjusted R-squared value of fitting result reaches 0.99461 which shows a reliable sensing result. With carbon nanotubes coating the surface of the fiber, the temperature sensitivity is enhanced from 0.24561 to 1.65282 dB/°C in a small region, and the performance of humidity sensing becomes more linear and applicable. The adjusted R-squared value of the linear fitting line for humidity sensing shows a dramatic increase from 0.71731 to 0.92278 after carbon nanotube coating, and the humidity sensitivity presents 0.02571 nm/%RH.Entities:
Keywords: carbon nanotube; fiber sensors; humidity; miniaturized interferometer; temperature
Year: 2019 PMID: 31390826 PMCID: PMC6724008 DOI: 10.3390/mi10080521
Source DB: PubMed Journal: Micromachines (Basel) ISSN: 2072-666X Impact factor: 2.891
Figure 1The schematic diagram of the mismatched single-mode fiber (a), the microscope image of the mismatched node (b) and the carbon nanotube (CNT) coated part (c).
Figure 2The simulation results of the mismatched fiber structure with normal cladding (a–c) and very thick cladding (d–f).
Figure 3The relationship between interference dip wavelength shifting and the continuous temperature change from 40 to 125 °C at an interval of 5 °C.
Figure 4The relationship between temperature and interference intensity at the wavelength of 1593 nm.
Figure 5The spectra of temperature and interference intensity without (a) and with (b) CNT coating.
Figure 6The relationship and linear fitting between temperature and interference dip intensity without (blue line) and with (red line) CNT coating.
Figure 7The spectra of relative humidity (RH) and interference wavelength without (a) and with (b) CNT attached.
Figure 8The relationship and linear fitting between RH and interference dip wavelength without (blue line) and with (red line) CNT attached.