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A Novel Optical Micro Ring Resonator Biosensor Design using Lithium Niobate on Insulator (LNOI) to Detect The Concentration of Glucose

机译:利用绝缘子上铌酸锂(LNOI)检测葡萄糖浓度的新型光学微环谐振器生物传感器设计

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Sensing is not only essential but also unavoidable in the medical fields to analyze different types of biological samples for diagnostic purposes. Although, the conventional laboratory based sensing method provides high accuracy, sometimes, it is not suitable in terms of cost, sensing time, and amount of samples needed for sensing. In this work, we design a novel optical micro ring resonator biosensor utilizing the properties of lithium niobate (LiNbO3) on insulator (LNOI) to detect the concentration of glucose in blood and urine. Optical micro ring resonator attracts researchers in the biomedical field for their compactness, tenability, and low cost. Moreover, LNOI offers some special properties like favorable optical, mechanical, pieozoelectrical, photoelastic, photorefractive, and photovoltaic properties. First, various samples of devices were designed in COMSOL to perform the modal analysis. Then, these devices were implemented in Opti-FDTD to evaluate the performance of the sensor. By varying different parameters like rib height and width, we optimized the structure of the device where rib height, rib width, top layer width of LiNbO3, ring radius, and the distance between ring and waveguide are 0.56 µm, 0.5 µm, 0.16 µm, 15 µm, and approximately 70 to 80 nm, respectively. This optimized structure shows high quality (Q) factor, sharp resonance wavelength, and more distance between two resonance wavelengths of two different concentration of glucose. For sensing purpose, Gaussian modulated continuous wave of 1545 nm wavelength was used as input and best results in output were obtained at 1250 to 1280 nm wavelength.
机译:在医学领域,为了诊断目的分析不同类型的生物样品,传感不仅是必不可少的,而且是不可避免的。尽管常规的基于实验室的传感方法具有很高的准确性,但有时在成本,传感时间和传感所需的样本量方面都不适合。在这项工作中,我们设计了一种利用铌酸锂(LiNbO 3 )在绝缘体(LNOI)上以检测血液和尿液中的葡萄糖浓度。光学微环形谐振器的紧凑性,耐用性和低成本吸引了生物医学领域的研究人员。此外,LNOI提供了一些特殊的特性,例如良好的光学,机械,压电,光弹性,光折变和光伏特性。首先,在COMSOL中设计了各种设备样本来执行模态分析。然后,这些设备在Opti-FDTD中实现,以评估传感器的性能。通过改变不同的参数(如肋高和肋宽),我们优化了器件的结构,其中肋高,肋宽,LiNbO的顶层宽度 3 环半径,环和波导之间的距离分别为0.56 µm,0.5 µm,0.16 µm,15 µm和大约70至80 nm。这种优化的结构显示出高质量(Q)因子,尖锐的共振波长,以及两种不同浓度的葡萄糖的两个共振波长之间的距离更大。出于传感目的,使用1545 nm波长的高斯调制连续波作为输入,并在1250至1280 nm波长下获得最佳输出结果。

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