| Literature DB >> 31726706 |
Jin Li1,2,3, Juntong Yang2, Jinna Ma1.
Abstract
A temperature probe has been proposed by inserting a microfiber taper into a silica hollow core fiber with a microsphere end. The sealed air cavity in the microsphere and the inserted microfiber acted as the two reflectors of a Fabry-Perot interferometer, respectively. The contribution of both microfiber diameter and cavity length on the interference spectra was analyzed and discussed in detail. The temperature change was experimentally determined by monitoring the wavelength location of the special resonance dip. By filling the air cavity with poly-dimethylsiloxane (PDMS), a high temperature sensitivity of 3.90 nm/°C was experimentally demonstrated. This temperature probe with the diameter of 150 μm and length of 10 mm will be a promising candidate for exploring the miniature or implantable sensors.Entities:
Keywords: fiber sensors; integrated optics; microfiber; temperature sensors
Year: 2019 PMID: 31726706 PMCID: PMC6915583 DOI: 10.3390/mi10110773
Source DB: PubMed Journal: Micromachines (Basel) ISSN: 2072-666X Impact factor: 2.891
Figure 1Schematic of microfiber-microsphere Fabry-Perot interferometer with a tunable cavity length by moving microfiber in a hollow core fiber based on micro-manipulation technique.
Figure 2Fabrication process of a microfiber-microsphere Fabry-Perot interferometer temperature probe: (a) fiber drawing; (b) Microfiber taper preparing; (c) Silica hollow core fiber pre-treatment; (d) Microsphere fabrication; (e) PDMS filling and curing.
Figure 3Reflected spectra of Fabry-Perot micro-interferometer with different cavity length (61 μm; 128 μm; 181 μm; 227 μm) by fixing microfiber taper in silica hollow core fiber.
Figure 4PDMS filled microfiber-air-cone with different defects (a–c) and non-defects (d). (a) big bubble; (b) small bubbles; (c) impurities.
Figure 5Resonance dip in the reflected spectra of microfiber Fabry-Perot cavity red-shifted for 3.51 nm when temperature increased from 30 °C to 31 °C.
Figure 6Temperature sensing characteristic curve of microfiber-microsphere temperature probe during 30–40 °C.
Sensing performance comparison for some typical Fabry-Perot temperature fiber sensors.
| Structure or Materials | Sensitivity | Range | Reference |
|---|---|---|---|
| TiO2 film/PDMS overlay | 0.13 dB/°C | 22–60 °C | [ |
| SMF/Capillary | −60.79 nW/°C | 20–35 °C | [ |
| Cascaded Fabry-Perot interferometers/Liquid crystal filling/Vernier effect | 19.55 nm/°C | 30–120 °C | [ |
| Silicon/UV glue | 84.4 pm/°C | −50–130 °C | [ |
| Air cavity | 9.91 pm/°C | 100–400 °C | [ |
| FBG/UV glue | 81.0 pm/°C | −60–140 °C | [ |
| Cr/Capillary/Ni jacket | ~7.7 mrad/°C | −25–950 °C | [ |
| Nafion film | 2.71 nm/°C | −15–65 °C | [ |
| Graphene films | 352 pm/°C | 20–60 °C | [ |
| Photonics crystal fiber (PCF) | 15.61 pm/°C | 300–1200 °C | [ |
| Microfiber tip | 13.6 pm/°C | 25–1000 °C | [ |
| Gas filled capillaries | 74.6 pm/°C | 127–327 °C | [ |
| Ho3+ doped fibers | 75 pm/°C | 20–50 °C | [ |
| Liquid polymer | 877 pm/°C | 30–60 °C | [ |
| Refractive index liquid/PCF | ~14.72 nm/°C | 18–21 °C | [ |
| Microfiber/PDMS | 11.86 nm/°C | 43–50 °C | [ |
| Microfiber/Microsphere/PDMS | 3.9 nm/°C | 30–40 °C | This work |