| Literature DB >> 29997366 |
Chengxiang Liu1, Xu Wu2,3, Jianhui Zhu4, Nie He5,6, Zhuoyan Li7,8, Gongshen Zhang9, Li Zhang10, Shuangchen Ruan11,12.
Abstract
The radiation effects of three Er3+-doped superfluorescent fiber sources (SFSs), which are based on three segments of Er-doped fibers with different lengths, are studied experimentally. We observed that the radiation-induced attenuation of the signal light of the 1530 nm band for an SFS is less than that of the 1560 nm band. Thus, the trimming technique of the Gauss-like spectra is investigated to reduce the mean wavelength drift. A filter was customized and used in superfluorescent fiber sources. To further reduce output power loss, the method with feedback control of pump power was adopted in the SFS. Then, the trimming spectral SFS with pump feedback control was tested under irradiation environment at the dose rate of 2.988 Gy/h. The experimental results demonstrate that the mean wavelength drift is <40 ppm and the loss of output power is <0.2 dB under a total dose higher than 1000 Gy. These findings confirm the significance of the method in improving radiation-resistant capabilities of fiber sources under irradiation environments.Entities:
Keywords: fiber optic sources and detectors; radiation; radiation-resistant technique; superfluorescence
Year: 2018 PMID: 29997366 PMCID: PMC6069274 DOI: 10.3390/s18072236
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Experimental setup of SFS under Gamma irradiation.
Figure 2Output spectra of three SFSs with different EDF lengths at room temperature.
Specifications of the Three Tested SFSs.
| SFS | Configuration | EDF Length (m) | Pump LD Power (mW) | Output Power (mW) |
|---|---|---|---|---|
| SFS#1 | DFB | 6.20 | 70.00 | 14.96 |
| SFS#2 | DFB | 8.30 | 70.00 | 15.90 |
| SFS#3 | DFB | 17.20 | 71.00 | 18.59 |
Stabilities of SFSs for 25 h at Room Temperature.
| SFS | Mean Wavelength Shift (ppm) | Power Change (%) |
|---|---|---|
| SFS#1 | 6.489 | 0.402 |
| SFS#2 | 11.627 | 0.472 |
| SFS#3 | 11.539 | 0.658 |
Figure 3(a) Output power losses and (b) mean wavelength drifts of three SFSs with increased radiation dose.
Figure 4(a) Spectral evolution and (b) spectral variations of SFS#1 with respect to taking the zero-irradiated spectrum as the reference.
Figure 5(a) Original spectrum and expected trimming spectrum and (b) transmission spectrum of the expected filter.
Figure 6(a) Experiment results of the spectral evolution of SFS#1 and calculated Gaussian-like spectral evolution with irradiation dose and (b) mean wavelength drift of SFS#1 (experimental data) and calculated mean wavelength drift of SFS with trimming.
Figure 7(a) Transmission spectrum of custom filter and (b) original spectrum and actual trimming spectrum.
Figure 8Schematic diagram of the feedback control SFS with the filter under Gamma irradiation. (This SFS is denoted by the symbol SFS#4).
Figure 9Spectral evolution of SFS#4 in increased radiation dose.
Figure 10Experimental results of SFS#4 of (a) output power loss and (b) mean wavelength shift under Gamma ray irradiation of 500 Gy.
Figure 11Measured (a) output power loss and (b) mean wavelength drift of an SFS with feedback control and trimming under Gamma ray irradiation of 1000 Gy.