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首页> 外文期刊>Photonics and Nanostructures: Fundamentals and Applications >Enhancement in performance of an evanescent wave fiber optic sensor in the near-infrared region by graphene's chemical potential
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Enhancement in performance of an evanescent wave fiber optic sensor in the near-infrared region by graphene's chemical potential

机译:石墨烯化学潜力在近红外区域中的渐逝波光纤传感器性能的性能提高

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摘要

An intensity interrogation-based fiber optic evanescent wave sensor with graphene monolayer is simulated and analyzed in the near-infrared spectral region. Chalcogenide glasses are considered as fiber's core and clad materials. Dispersion relations of normal and malignant human liver tissues are considered for analysis. The effect of graphene's chemical potential (mu) on sensor's performance is examined, which is evaluated in terms of sensitivity and resolution. The analysis of simulation results indicates that if mu is set around 0.45 eV at 1550-nm light wavelength (lambda), the sensitivity achieved is nearly 47 mW/RIU (real index) and 280 mW/RIU (imaginary index), and the resolution achieved is of the order of 10(-9) RIU (real index) and 10(-10) RIU (imaginary index). Even further improvement in the sensing performance can be achieved around mu = 0.6 eV. The analysis shows that it is preferable to use p-polarized light as it provides significantly better values of sensitivity and resolution than spolarized light. In addition to smaller photodamage and reduced Rayleigh scattering (due to being operated in NIR), the proposed fiber optic sensor probe has the capability to provide considerably superior resolution than existing fiber optic sensors based on different techniques.
机译:在近红外光谱区域中模拟并分析了具有石墨烯单层的基于强度询问的光学渐逝波传感器。硫属化物玻璃被认为是纤维的核心和包层材料。认为正常和恶性人肝组织的分散关系进行分析。研究了石墨烯的化学电位(MU)对传感器性能的影响,在灵敏度和分辨率方面评估。仿真结果分析表明,如果MU在1550nm光波长(Lambda)中设定约0.45eV,所以实现的灵敏度是近47 MW / RIU(实际指数)和280 MW / RIU(虚构指数),以及分辨率实现的是10(-9)Riu(实际指数)和10(-10)Riu(虚构指数)的顺序。甚至可以在MU = 0.6eV周围实现感测性能的进一步改善。分析表明,优选使用p偏振光,因为它提供比脊柱光的显着更好的灵敏度和分辨率值。除了较小的光挖掘和减少瑞利散射(由于在NIR中运行)之外,所提出的光纤传感器探针具有基于不同技术的现有光纤传感器的能力提供了比现有光学传感器的显着优异的分辨率。

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