| Literature DB >> 26184227 |
Xianchao Yang1, Ying Lu2, Mintuo Wang3, Jianquan Yao4.
Abstract
To solve the problem of air hole coating and analyte filling in microstructured optical fiber-based surface plasmon resonance (SPR) sensors, we designed an exposed-core grapefruit fiber (EC-GFs)-based SPR sensor. The exposed section of the EC-GF is coated with a SPR, supporting thin silver film, which can sense the analyte in the external environment. The asymmetrically coated fiber can support two separate resonance peaks (x- and y-polarized peaks) with orthogonal polarizations and x-polarized peak, providing a much higher peak loss than y-polarized, also the x-polarized peak has higher wavelength and amplitude sensitivities. A large analyte refractive index (RI) range from 1.33 to 1.42 is calculated to investigate the sensing performance of the sensor, and an extremely high wavelength sensitivity of 13,500 nm/refractive index unit (RIU) is obtained. The silver layer thickness, which may affect the sensing performance, is also discussed. This work can provide a reference for developing a high sensitivity, real-time, fast-response, and distributed SPR RI sensor.Entities:
Keywords: exposed-core grapefruit fibers; silver layer thickness; surface plasmon resonance; x- and y-polarized
Year: 2015 PMID: 26184227 PMCID: PMC4541925 DOI: 10.3390/s150717106
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1(a) Cross-section of the commercial grapefruit fiber; (b) Schematic of the designed EC-GF-based SPR sensor.
Figure 2Dispersion relations and electric field distributions of core modes and the plasmon mode with analyte RI na = 1.42. Insets (a) to (e) are electric field distributions of plasmon mode and core mode at different wavelengths.
Figure 3(a) Loss spectra of x- and y-polarized peaks with analyte RI 1.33 and 1.34; (b) Amplitude sensitivity of x- and y-polarized core modes with analyte RI changes from 1.33 to 1.34.
Figure 4(a) X- and y-polarized peak losses with analyte RI changes from 1.33 to 1.42; (b) Wavelength sensitivity of x- and y-polarized peaks with analyte RI changes from 1.33 to 1.42.
Figure 5(a) Loss spectra of x- and y-polarized peaks with silver layer thicknesses 30 nm, 40 nm and 50 nm when analyte RI is 1.33; (b) x- and y-polarized peak losses with silver layer thicknesses changes from 30 nm to 80 nm when analyte RI is 1.33.
Figure 6(a) Wavelength sensitivity of x- and y-polarized peaks with silver layer thicknesses change from 30 nm to 80 nm; (b) Amplitude sensitivity of x- and y-polarized peaks with silver layer thicknesses change from 30 nm to 80 nm