太赫兹波段新型光子晶体光纤化学传感器的设计与数值分析

Q2 Physics and Astronomy Physics Open Pub Date : 2023-07-22 DOI:10.1016/j.physo.2023.100168
Md Selim Hossain , Rakib Hossen , Syada Tasmia Alvi , Shuvo Sen , Md Al-Amin , Md. Mahabub Hossain
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引用次数: 0

摘要

我们提出了一种基于十方包层和六面体芯的光子晶体光纤(PCF),用于感应太赫兹频率(THz)中的化学物质。包层区域中的圆形气孔(CAH)构成了所提出的传感器。对各种频率进行了评估,分别从灵敏度、限制损耗和有效材料损耗方面分析了传感器的性能。我们使用有限元方法(FEM)设计并定量分析了我们提出的基于六面体的PCF传感器的光学特性。还对方形气孔长度、支柱和芯尺寸进行了研究,以提高所提出的传感器传感元件的性能和制造公差。在理想条件下,所提出的PCF传感器的最大相对灵敏度为94.65%,限制损耗为6.01×10−8 cm−1,有效材料损耗(EML)为9.16×10−4 cm−1和有效模面积(EMA)为1.35×10−7 m2。我们相信,所建议的传感器优化的几何结构将有利于制造,以及传感器对实际应用的贡献。此外,我们提出的PCF光纤在太赫兹(THz)区域将是各种光通信应用和医疗信号的理想选择。
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Design and numerical analysis of a novel photonic crystal fiber based chemicals sensor in the THz regime

We presented a decagonal cladding and hexahedron core-based photonic crystal fiber (PCF) to sense chemicals in the terahertz frequency (THz). Circular air holes (CAHs) in the cladding region make up the proposed sensor. A wide variety of frequencies were evaluated to analyze the sensor's performance in terms of sensitivity, confinement loss, and effective material loss respectively. We designed and quantitatively analyzed the optical properties of our proposed hexahedron-based PCF sensor using the finite element method (FEM). Square-shaped air hole length, strut, and core size have also been researched to improve the performance of the proposed sensor's sensing components and fabrication tolerance. At ideal conditions, the suggested PCF sensor has a maximum relative sensitivity of 94.65%, confinement loss of 6.01 × 10−8 cm−1, effective material loss (EML) of 9.16 × 10−4 cm−1, and effective mode area (EMA) of 1.35 × 10−7 m2. We are confident that the suggested sensor's optimized geometrical structure will be manufacturing-friendly, as well as the sensor's contribution to practical uses. Furthermore, our proposed PCF fiber will be ideal in the terahertz (THz) regions for various optical communication applications and medicinal signals.

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来源期刊
Physics Open
Physics Open Physics and Astronomy-Physics and Astronomy (all)
CiteScore
3.20
自引率
0.00%
发文量
19
审稿时长
9 weeks
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