| Literature DB >> 29874800 |
Mian Yao1,2, Xia Ouyang3, Jushuai Wu4, A Ping Zhang5, Hwa-Yaw Tam6, P K A Wai7.
Abstract
Miniature optical fiber-tip sensors based on directly µ-printed polymer suspended-microbeams are presented. With an in-house optical 3D μ-printing technology, SU-8 suspended-microbeams are fabricated in situ to form Fabry⁻Pérot (FP) micro-interferometers on the end face of standard single-mode optical fiber. Optical reflection spectra of the fabricated FP micro-interferometers are measured and fast Fourier transform is applied to analyze the cavity of micro-interferometers. The applications of the optical fiber-tip sensors for refractive index (RI) sensing and pressure sensing, which showed 917.3 nm/RIU to RI change and 4.29 nm/MPa to pressure change, respectively, are demonstrated in the experiments. The sensors and their optical µ-printing method unveil a new strategy to integrate complicated microcomponents on optical fibers toward 'lab-on-fiber' devices and applications.Entities:
Keywords: gas-pressure sensors; lab-on-fiber; optical 3D µ-printing; optical fiber-tip sensors; refractive index sensors
Year: 2018 PMID: 29874800 PMCID: PMC6022165 DOI: 10.3390/s18061825
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1(a) Schematic of an optical fiber-tip sensor and its working principle. (b) Schematics of the other two optical fiber-tip sensors with different structures of suspended microbeams.
Figure 2(a) Schematic diagram of the optical 3D µ-Printing technology. (b) Flow chart for printing the optical fiber-tip sensors.
Figure 3(a), (b), and (c) Scanning electron microscope (SEM) images of SU-8 suspended-microbeams printed on the end face of optical fibers. All scale bars are 20 μm. (d), (e), and (f) FFT’s results of the corresponding reflection spectra of optical fiber-tip sensors shown in (a), (b), and (c). Insets are the reflection spectra measured in air.
Figure 4Schematic of the experimental setup for testing the optical fiber-tip sensors. (a) Refractive index sensing; (b) gas-pressure sensing.
Figure 5Measured reflection spectra of the optical fiber-tip sensor immersed into liquids with different refractive indices.
Figure 6Response of a spectral dip of the optical fiber-tip sensor to the RI change of surrounding liquid. Inset shows the spectrum evolution of the spectral dip under monitoring.
Figure 7Response of a spectral dip of the optical fiber-tip sensor to the gas-pressure change of ambient environment. Inset shows the spectrum evolution of the tracked spectral dip.