| Literature DB >> 28378783 |
Xinyue Huang1,2, Xueming Li1, Jianchun Yang3, Chuanyi Tao2, Xiaogang Guo1, Hebin Bao1, Yanjun Yin1, Huifei Chen1, Yuhua Zhu1.
Abstract
Ammonia is an important indicator among environmental monitoring parameters. In this work, thin-core fiber Mach-Zehnder interferometer deposited with poly (acrylic acid) (PAA), poly (allyamine hydrochloride) (PAH) and single-walled carbon nanotubes (SWCNTs-COOH) sensing film for the detection of ammonia gas has been presented. The thin-core fiber modal interferometer was made by fusion splicing a small section of thin-core fiber (TCF) between two standard single mode fibers (SMF). A beam propagation method (BPM) is employed for the design of proposed interferometer and numerical simulation. Based on the simulation results, interferometer with a length of 2 cm of thin-core fiber is fabricated and experimentally studied. (PAH/PAA)2 + [PAH/(PAA + SWCNTs-COOH)]8 film is deposited on the outer surface of thin-core fiber via layer-by-layer (LbL) self-assembly technique. The gas sensor coated with (PAH/PAA)2 + [PAH/(PAA + SWCNTs-COOH)]8 film towards NH3 gas exposure at concentrations range from 1 to 960 ppm are analyzed and the sensing capability is demonstrated by optical spectrum analyzer (OSA). Experimental results show that the characteristic wavelength shift has an approximately linear relationship in the range 1-20 ppm, which is in accordance with the numerical simulation. Thus, this paper reveals the potential application of this sensor in monitoring low concentration NH3 gas.Entities:
Year: 2017 PMID: 28378783 PMCID: PMC5381216 DOI: 10.1038/srep44994
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) Configuration of thin-core fiber Mach-Zehnder interferometer; (b) Schematic diagram of the experimental system.
Parameters of optical fiber used in simulation.
| Items | SMF | TCF |
|---|---|---|
| 8.3 | 2.5 | |
| 1.4512 | 1.4505 | |
| 125 | 125 | |
| 1.4447 | 1.4447 |
Figure 2The experimental(solid line) and the simulative (dashed line) spectrum of thin-core fiber Mach-Zehnder interferometer with different length of thin-core fiber (a) 2 cm; (b) 3 cm; (c) 4 cm; (d) 5 cm.
Figure 3(a) The simulated spectrum of thin-core fiber Mach-Zehnder interferometer self-assembled with different thickness of film; (b) The simulated spectrum of thin-core fiber Mach-Zehnder interferometer in different refractive index solution.
Figure 4(a) Cross-sectional view of the TCF section. (b) The scanning electronic microscope (SEM) image of the cross-section of the fiber coated with (PAA/PAH)10 film. The inset shows the surface morphology. (c) The scanning electronic microscope (SEM) image of the cross-section of the fiber coated with (PAH/PAA)2 + [PAH/(PAA + SWCNTs-COOH)]8 film. The inset shows the surface morphology.
Figure 5(a) The spectral responses of the thin-core fiber Mach-Zehnder interferometer sensor in various concentration of ammonia gas. (b) The wavelength shift upon the concentration of ammonia gas (0–960 ppm); (c) The wavelength shift upon the concentration of ammonia gas (0–20 ppm).
Figure 6(a) Dynamic responses of the thin-core fiber Mach-Zehnder interferometer ammonia sensor deposited with (PAH/PAA)2 + [PAH/(PAA + SWCNTs-COOH)]8. (b) Relative wavelength shifts of the transmission spectrum of the TCFMI on exposure to ammonia and other analytes.