| Literature DB >> 36015998 |
Chuanxin Teng1, Shiyuan Ying1, Rui Min2, Shijie Deng1, Hongchang Deng1, Ming Chen1, Xiaoxue Chu3, Libo Yuan1, Yu Cheng1, Minmin Xue1.
Abstract
In this work, a simple side-polish plastic optical fiber (POF)-based surface plasmon resonance (SPR) sensor is proposed and demonstrated for simultaneous measurement of refractive index (RI) and liquid level. The effects of side-polish depths on the sensing performance were studied. The experimental results show that the SPR peak wavelength will be changed as the RI changes, and the SPR peak intensity will be changed with the liquid level variation. By monitoring the changes in peak wavelength and intensity, the RI and liquid level can be detected simultaneously. Experimental results show that an RI sensitivity of 2008.58 nm/RIU can be reached at an RI of 1.39. This sensor has the advantages of simple structure and low cost, which has a good prospect in the field of biochemical sensing.Entities:
Keywords: liquid level; plastic optical fiber (POF); refractive index (RI); side-polish; simultaneous measurement; surface plasma resonance (SPR)
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Year: 2022 PMID: 36015998 PMCID: PMC9413881 DOI: 10.3390/s22166241
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.847
Figure 1(a) Schematic of the side-polish POF sensing probe; (b) The cross-section view of the side-polish POF sensing probe.
Figure 2Schematic of the fabrication process for the sensor probe: (a) Side-polish process; (b) Sputtering process.
Figure 3Photograph of the POF probe.
Figure 4Simulation results of RI sensing.
Figure 5Simulation results of the liquid level sensing: (a) The solution with RI of 1.335; (b) The solution with RI of 1.38; The simulation results of liquid level sensing performance of probes with different polished depths in the liquid with RIs of 1.335 (c) and 1.38 (d).
Figure 6The schematic of experiment setup.
Figure 7The sensing performance of the POF probe with polished depth of 100 μm: (a) The transmission spectrum for RI measurement; (b) The relationship between RI and SPR peak wavelength; The transmission spectrum for liquid level measurement with RI of 1.335 (c) and 1.38 (d); The relationship between liquid level and SPR peak intensity with RI of 1.335 (e) and 1.38 (f).
Figure 8RI sensing performance for the POF probes with different depths: (a) 200 μm; (b) 300 μm; (c) The relationship of SPR peak wavelength and RI for probes with different polished depths; (d) RI sensitivity of probes with different polished depth; (e) Normalized transmission spectra of the POF probes with different polished depths in water; (f) FWHM of probes with different polished depth in different samples.
Figure 9Liquid-level sensing performance of probes with different polished depths in liquids with RIs of 1.335 (a) and 1.38 (b).
Figure 10(a) Normalized transmission spectra for the probe with different temperatures ranging from 24 to 32 °C; (b) The changes in SPR peak wavelengths and transmission intensities at different temperatures.