| Literature DB >> 27537885 |
Shan Zhu1, Fufei Pang2, Sujuan Huang3, Fang Zou4,5, Qiang Guo6, Jianxiang Wen7, Tingyun Wang8.
Abstract
Atomic layer deposition (ALD) technology is introduced to fabricate a high sensitivity refractometer based on an adiabatic tapered optical fiber. Different thicknesses of titanium dioxide (TiO₂) nanofilm were coated around the tapered fiber precisely and uniformly under different deposition cycles. Attributed to the higher refractive index of the TiO₂ nanofilm compared to that of silica, an asymmetric Fabry-Perot (F-P) resonator could be constructed along the fiber taper. The central wavelength of the F-P resonator could be controlled by adjusting the thickness of the TiO₂ nanofilm. Such a F-P resonator is sensitive to changes in the surrounding refractive index (SRI), which is utilized to realize a high sensitivity refractometer. The refractometer developed by depositing 50.9-nm-thickness TiO₂ on the tapered fiber shows SRI sensitivity as high as 7096 nm/RIU in the SRI range of 1.3373-1.3500. Due to TiO₂'s advantages of high refractive index, lack of toxicity, and good biocompatibility, this refractometer is expected to have wide applications in the biochemical sensing field.Entities:
Keywords: adiabatic tapered optical fiber; atomic layer deposition; refractometer; titanium dioxide nanofilm
Year: 2016 PMID: 27537885 PMCID: PMC5017460 DOI: 10.3390/s16081295
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Schematic diagram of (a) the tapered fiber coated with TiO2 nanofilm, and the coated region in the (b) axial and (c) radial directions.
Figure 2Transmission spectra as a function of the TiO2 film thickness in water (1.33).
Figure 3Transmission spectra as a function of surrounding refractive index (SRI) with d = 40 nm.
Figure 4X-ray photoelectron spectroscopy (XPS) picture of optical fiber deposited with TiO2 nanofilm.
Figure 5Scanning electron microscopy (SEM) picture of an optical fiber deposited with 3000 layers TiO2 nanofilm.
Figure 6Transmission spectra obtained when the tapered fiber with TiO2 thicknesses of 39.7, 45.2, and 50.9 nm are immersed in (a) air and (b) deionized water; and (c) resonant wavelength as a function of the TiO2 film thickness.
Figure 7Transmission spectra shift with increasing SRI for different TiO2 film thickness values. (a) 39.7 nm; (b) 45.2 nm; (c) 50.9 nm.
Figure 8Relative resonant wavelength increases with increasing SRI for different TiO2 film thickness.
Figure 9Resonant wavelength versus time.