| Literature DB >> 27740606 |
Wei Xu1, Jianquan Yao2, Xianchao Yang3, Jia Shi4, Junfa Zhao5, Cheng Zhang6.
Abstract
A hollow fiber temperature sensor filled with graphene-Ag composite nanowire and liquid is presented and numerically characterized. The coupling properties and sensing performances are analyzed by finite element method (FEM) using both wavelength and amplitude interrogations. Due to the asymmetrical surface plasmon resonance sensing (SPR) region, the designed sensor exhibits strong birefringence, supporting two separate resonance peaks in orthogonal polarizations. Results show that x-polarized resonance peak can provide much better signal to noise ratio (SNR), wavelength and amplitude sensitivities than y-polarized, which is more suitable for tempertature detecting. The graphene-Ag composite nanowire filled into the hollow fiber core can not only solve the oxidation problem but also avoid the metal coating. A wide temperature range from 22 ∘C to 47 ∘C with steps of 5 ∘C is calculated and the temperature sensitivities we obtained are 9.44 nm/ ∘C for x-polarized and 5.33 nm/ ∘C for y-polarized, much higher than other sensors of the same type.Entities:
Keywords: birefringence; graphene-Ag composite nanowire; hollow fiber; surface plasmon resonance (SPR)
Year: 2016 PMID: 27740606 PMCID: PMC5087444 DOI: 10.3390/s16101656
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Cross section of the designed temperature sensor.
Figure 2(Left) Dispersion relations of the core guided modes and the plasmon modes at temperature T = 22 C. (Insets) Electric field distributions of (a) core guided mode of x-pol at λ = 1.4 m; (b) core guided mode of y-pol at λ = 1.4 m; (c) core guided mode of x-pol at λ = 1.757 m (resonance wavelength); (d) core guided mode of y-pol at λ = 2.068 m (resonance wavelength); (e) plasmon mode of x-pol at λ = 1.75 m; (f) plasmon mode of y-pol at λ = 2.06 m.
Figure 3Loss spectra of x- and y-pol when T changes from 22 C to 47 C with steps of 5 C.
Figure 4Amplitude sensitivities of x- and y-pol peaks when T changes form 22 C to 27 C.
Figure 5Relationships between resonance peaks and temperature.