Characteristic Analysis and Structural Design of Hollow-Core Photonic Crystal Fibers with Band Gap Cladding Structures
Autor: | Tianshu Li, Xin Ma, Jian Zhang, Bowei Wan, Lianqing Zhu |
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Jazyk: | angličtina |
Rok vydání: | 2021 |
Předmět: |
Materials science
Band gap finite element method Optical power 02 engineering and technology lcsh:Chemical technology 01 natural sciences Biochemistry Article Analytical Chemistry 010309 optics COMSOL structural design 0103 physical sciences Bandwidth (computing) lcsh:TP1-1185 Sensitivity (control systems) Electrical and Electronic Engineering Instrumentation hollow-core photonic crystal fiber photonic band gap effect business.industry Radius 021001 nanoscience & nanotechnology Cladding (fiber optics) Atomic and Molecular Physics and Optics Core (optical fiber) Optoelectronics 0210 nano-technology business characteristic analysis Photonic-crystal fiber |
Zdroj: | Sensors Volume 21 Issue 1 Sensors (Basel, Switzerland) Sensors, Vol 21, Iss 284, p 284 (2021) |
ISSN: | 1424-8220 |
DOI: | 10.3390/s21010284 |
Popis: | Due to their flexible structure and excellent optical characteristics hollow-core photonic crystal fibers (HC-PCFs) are used in many fields, such as active optical devices, communications, and optical fiber sensing. In this paper, to analyze the characteristics of HC-PCFs, we carried out finite element analysis and analyzed the design for the band gap cladding structure of HC-PCFs. First, the characteristics of HC19-1550 and HC-1550-02 in the C-band were simulated. Subsequently, the structural optimization of the seven-cell HC-1550-02 and variations in characteristics of the optimized HC-1550-02 in the wavelength range 1250&ndash 1850 nm were investigated. The simulation results revealed that the optimal number of cladding layers is eight, the optimal core radius is 1.8 times the spacing of adjacent air holes, and the optimal-relative thickness of the core quartz-ring is 2.0. In addition, the low confinement loss bandwidth of the optimized structure is 225 nm. Under the transmission bandwidth of the optimized structure, the core optical power is above 98%, the confinement loss is below 9.0 × 10&minus 3 dB/m, the variation range of the effective mode field area does not exceed 10 &mu m2, and the relative sensitivity is above 0.9570. The designed sensor exhibits an ultra-high relative sensitivity and almost zero confinement loss, making it highly suitable for high-sensitivity gas or liquid sensing. |
Databáze: | OpenAIRE |
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