| Literature DB >> 33918524 |
Kawsar Ahmed1, Mohammed A AlZain2, Hasan Abdullah1, Yanhua Luo3, Dhasarathan Vigneswaran4, Osama S Faragallah2, Mahmoud M A Eid5, Ahmed Nabih Zaki Rashed6.
Abstract
A plasmonic material-coated circular-shaped photonic crystal fiber (C-PCF) sensor based on surface plasmon resonance (SPR) is proposed to explore the optical guiding performance of the refractive index (RI) sensing at 1.7-3.7 μm. A twin resonance coupling profile is observed by selectively infiltrating liquid using finite element method (FEM). A nano-ring gold layer with a magnesium fluoride (MgF2) coating and fused silica are used as plasmonic and base material, respectively, that help to achieve maximum sensing performance. RI analytes are highly sensitive to SPR and are injected into the outmost air holes of the cladding. The highest sensitivity of 27,958.49 nm/RIU, birefringence of 3.9 × 10-4, resolution of 3.70094 × 10-5 RIU, and transmittance dip of -34 dB are achieved. The proposed work is a purely numerical simulation with proper optimization. The value of optimization has been referred to with an experimental tolerance value, but at the same time it has been ensured that it is not fabricated and tested. In summary, the explored C-PCF can widely be eligible for RI-based sensing applications for its excellent performance, which makes it a solid candidate for next generation biosensing applications.Entities:
Keywords: PCF; birefringence; refractive index sensor; sensitivity; surface plasmon resonance
Mesh:
Substances:
Year: 2021 PMID: 33918524 PMCID: PMC8066326 DOI: 10.3390/bios11040104
Source DB: PubMed Journal: Biosensors (Basel) ISSN: 2079-6374
Figure 1The (a) cross-sectional area, (b) mesh diagram and (c) schematic model of the proposed C-PCF.
Figure 2The representation resonance peak points for analyte 1.33 with SPP modes (a–e) first–fifth SPP modes; fundamental modes (f) X-polarization and (g) Y-polarization.
Figure 3The birefringence curve of the proposed C-PCF structure versus wavelength.
Figure 4The coupling length of the proposed C−PCF versus wavelength.
Figure 5The transmission spectrum variations in dB/m scale of the proposed C−PCF versus wavelength.
Figure 6Transmittance variations in scale of the proposed C−PCF versus wavelength.
Figure 7The Confine-loss profile of the proposed C−PCF for (a) X- (b) Y-polarization versus wavelength.
Figure 8The sensitivity response with respect to RI of analytes for X- and Y-polarizations.
Performance comparison between previously published paper and C-PCF structure.
| Structures | Publication Year | Reference | ||
|---|---|---|---|---|
| SPR based D-shaped sensor | 7700 | 1.30 × | 2017 | [ |
| Dual-core PCF based RI sensor | 9000 | 1.10 × | 2018 | [ |
| PCF based D-shaped RI sensor | 10,493 | 9.53 × | 2017 | [ |
| No-core multimode SPR sensor | 11,792 | 2.04 × | 2019 | [ |
| Selectively coated PCF sensor | 11,000 | 9.10 × | 2018 | [ |
| D-shaped SPR based PCF sensor | 11,500 | 8.70 × | 2020 | [ |
| Gold-and MgF2-Coated RI sensor | 27,959 | 3.70 × | - | Proposed Work |