氯仿渗透温度传感器采用非对称圆形双芯光子晶体光纤

M. M. Hossain, Rajib Mandal, Md. Ziual Amin, H. S. Mondal, Md. Ekhlasur Rahaman
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引用次数: 2

摘要

提出了一种新的基于双圆芯光子晶体光纤(ADCPCF)非对称性的温度传感器,其中两个芯都被氯仿渗透。为了分析温度相关的传播特性,使用了氯仿和二氧化硅的热光系数。双核芯的不对称性通过分别使用1.615和1.45µm的芯半径得到证实。在所提出的设计中,通过采用具有完全匹配层(PML)的有限元方法(FEM)来确定有效折射率差(双折射)、耦合长度和透射光谱等基本光学特性。氯仿的有效折射率在一定范围内随温度变化。此外,随着温度每升高1°C,有效指数差几乎增加到4%。此外,在35和30°C温度下,随着每100nm波长的减小,双折射率分别降低到0.125×10-3和0.092×10-3。数值分析显示,对于2.9µm的晶格间距和2.25µm的气孔直径,在1.61 mm的光纤长度下,最大灵敏度为49.80 nm/°C。此外,每增加1°C的温度,所提出的ADCPCF的灵敏度比现有结果提高约16%。此外,所提出的ADCPCF揭示了耦合长度、双折射和透射光谱等引导特性与波长和温度有关。
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Chloroform infiltrate temperature sensor using asymmetric circular dual-core photonic crystal fiber
A new temperature sensor based on asymmetry in dual circular core photonic crystal fiber (ADCPCF) is proposed where both the cores infiltrate by chloroform. To analyze the temperature dependent propagation characteristics, the thermo-optic coefficient of chloroform and silica is used. The asymmetry of the dual-core is confirmed by using the core radius of 1.615 and 1.45 µm, respectively. In the proposed design, the essential optical properties such as effective refractive index difference (birefringence), coupling length, and transmission spectra are determined by employing the finite element method (FEM) with the perfectly matched layer (PML). The effective refractive index of the chloroform varies with temperature within a certain range. Moreover, with the increase of every 1 °C temperature the effective index difference enhances to almost 4%. Also, with the reduction of every 100 nm wavelength the birefringence decrease to 0.125×10 -3 and 0.092×10 -3 for 35 and 30 °C temperature, respectively. The Numeric analysis shows the maximum sensitivity of 49.80 nm/°C at 1.61 mm fiber length for 2.9 µm lattice pitch with 2.25 µm air-hole diameter. Furthermore, every 1 °C temperature increment, the proposed ADCPCF exhibits approximately 16% increases of sensitivity than the existing result. In addition, the proposed ADCPCF reveals that the guiding properties like coupling length, birefringence, and transmission spectra are wavelength and temperature reliance.
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来源期刊
Journal of Biomedical Photonics and Engineering
Journal of Biomedical Photonics and Engineering Physics and Astronomy-Acoustics and Ultrasonics
CiteScore
1.60
自引率
0.00%
发文量
17
审稿时长
8 weeks
期刊最新文献
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