Design and simulation of a highly sensitive photonic crystal fiber sensor for malaria detection

Q3 Physics and Astronomy Results in Optics Pub Date : 2024-10-05 DOI:10.1016/j.rio.2024.100743
Ilhem Mired , Hicham Chikh-Bled , Mohammed Debbal
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Abstract

This research focuses on developing an innovative optical sensor utilizing photonic crystal fiber with a unique cladding structure. The photonic crystal fiber’s cladding consists of four layers of circular air holes, with two of them filled with hemoglobin. This arrangement renders the photonic crystal fiber sensitive to changes in hemoglobin concentration, primarily investigating its impact on chromatic dispersion – the wavelength-dependent refractive index variation. The study analyzes two specific wavelengths, 1.2 µm and 1.4 µm, finding high sensitivity at 1.2 µm, calculated to be 0.232 ps/(nm·km)/(g/L). The potential application lies in malaria diagnosis through non-invasive blood sample analysis. We selected the refractive index of an infected red blood cell at the ring stage, setting it at n = 1.395. Our proposed sensor demonstrates outstanding performance in diagnosing malaria at an HGB concentration of 38 g/L at 1.2 µm and at an HGB concentration of 40 g/L at 1.4 µm. By monitoring hemoglobin concentration changes, this photonic crystal fiber-based sensor offers a promising method for early and accurate malaria detection, thus potentially improving global healthcare.
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用于疟疾检测的高灵敏度光子晶体光纤传感器的设计与仿真
这项研究的重点是利用具有独特包层结构的光子晶体光纤开发一种创新的光学传感器。光子晶体光纤的包层由四层圆形气孔组成,其中两层充满血红蛋白。这种排列方式使光子晶体光纤对血红蛋白浓度的变化非常敏感,主要研究其对色散(随波长变化的折射率变化)的影响。研究分析了 1.2 µm 和 1.4 µm 这两个特定波长,发现 1.2 µm 波长的灵敏度很高,计算结果为 0.232 ps/(nm-km)/(g/L)。其潜在应用在于通过无创血液样本分析诊断疟疾。我们选择了受感染红细胞在环阶段的折射率,将其设定为 n = 1.395。在 1.2 微米处血红蛋白浓度为 38 克/升和 1.4 微米处血红蛋白浓度为 40 克/升时,我们提出的传感器在诊断疟疾方面表现出色。通过监测血红蛋白浓度的变化,这种基于光子晶体光纤的传感器为早期准确检测疟疾提供了一种很有前景的方法,从而有可能改善全球医疗保健。
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来源期刊
Results in Optics
Results in Optics Physics and Astronomy-Atomic and Molecular Physics, and Optics
CiteScore
2.50
自引率
0.00%
发文量
115
审稿时长
71 days
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