| Literature DB >> 30205527 |
Jian Tang1,2, Cailing Fu3, Zhiyong Bai4, Changrui Liao5, Yiping Wang6.
Abstract
We propose a novel tilted long period fiber grating (TLPFG) design, inscribed using a line-by-line inscription technique and an infrared femtosecond (Fs) laser. The responses of this TLPFG to external refractive index, temperature, torsion, and strain were systematically investigated to determine its sensing characteristics. The external refractive index (RI) was measured to be -602.86 nm/RIU at an RI of ~1.432. The TLPFG was used to accurately measure temperatures up to 450 °C with a sensitivity of 103.8 pm/°C. The torsion and strain sensitivity of the device were 48.94 nm/(rad/mm) and -0.63 pm/µε, respectively. These results demonstrate that the proposed TLPFG could be used as sensors in a series of application fields including high temperatures and external environments.Entities:
Keywords: TLPFG; femtosecond laser; optical fiber sensor; sensing properties
Year: 2018 PMID: 30205527 PMCID: PMC6163470 DOI: 10.3390/s18093003
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1(a) A schematic diagram of the Fs laser micromachining apparatus; (b) An image of the TLPFG with a grating pitch of 450 μm; (c) A schematic of the Fs laser scanning trajectory.
Figure 2Various TLPFG transmission spectra, including (a) TLPFGs with varying tilted angles; (b) A TLPFG with a period of 420 µm; (c) a TLPFG with a period of 440 µm; (d) A TLPFG with a period of 460 µm.
Figure 3(a) The resonance wavelength; (b) The resonance depth of TLPFGs with different grating pitches.
Figure 4(a) The transmission spectrum shift of TLPFG versus the refractive index variation; (b) The magnified wavelength shift spectrum at 1599.7 nm; (c) Polynomial term fitting of resonance wavelengths as the refractive index increased from 1.400 to 1.442; (d) The Linear Fitting of resonance wavelength as the refractive index increased from 1.432 to 1.442.
Figure 5(a) The transmission spectrum shift of the TLPFG versus temperature variations from 25 °C to 450 °C; (b) The resonance wavelengths shift shifts versus temperature variations from 25 °C to 450 °C; (c) Polynomial term fitting of resonance wavelength as the temperature increased to 450 °C and then cooled to 25 °C again; (d) The transmission spectrum of a TLPFG under various temperature conditions.
Figure 6(a) Resonance wavelength shifts for TLPFGs under an applied torsion in the range of −0.076 rad/mm to +0.076 rad/mm; (b) A linear fitting between the torsion and wavelength shift.
Figure 7(a) TLPFG resonance wavelength shifts under an applied strain ranging from 0 to 2500 με; (b) A linear fitting between the strain and wavelength shift.