基于超材料的微型双波段太赫兹吸收器作为非黑素瘤皮肤癌诊断的生物传感器

IF 3.1 3区 物理与天体物理 Q2 Engineering Optik Pub Date : 2024-09-21 DOI:10.1016/j.ijleo.2024.172048
Shashi Kanta Tripathy , Abhik Gorai , Trupti Mayee Behera , Rowdra Ghatak
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引用次数: 0

摘要

非黑色素瘤皮肤癌(NMSCs)的早期诊断对于成功治疗该疾病至关重要。最近,太赫兹光谱学成为了在 0.1 - 10 太赫兹之间的低太赫兹(THz)区域检测生物标记物的热门方法,这将与生物分子产生共振。这项工作需要设计一种微尺度太赫兹超材料吸收器,用于区分非黑素瘤皮肤癌皮肤和正常皮肤的属性。拟议的吸收器由聚酰亚胺基底上的空间填充曲面铝层组成。该吸收器在 0.503 太赫兹和 1.076 太赫兹分别达到 99.8% 和 99.5% 的吸收峰值,显示了其双波段特性。此外,介质折射率从 1.3 变为 1.4 时,吸收峰值会发生变化,第一和第二波段的灵敏度分别为 95.76 GHz/RIU 和 100 GHz/RIU。
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A miniaturized dual band terahertz metamaterial based absorber as a biosensor for non-melanoma skin cancer diognostic
Early diagnosis of Non-melanoma skin cancers (NMSCs) is most important for successful treatment of the disease.The detection of NMSCs involves visual inspection or invasive method of detection by skin biopsy. Recently, terahertz spectroscopy has come into limelight for detection of biomarkers in low terahertz (THz) region in between 0.1 – 10 THz which will be in resonance with the biomolecules. This work entails in designing a microscale THz metamaterial absorber for discriminating the attributes between Non-melanoma skin cancerous skin and normal skin. The proposed absorber is composed of space filling curved aluminum layer over a polymide substrate. The absorber culminates its absorbance peak of 99.8 % at 0.503 THz and 99.5 % at 1.076 THz, revealing its dual band trait. Moreover, variation of refractive index of the medium from 1.3 to 1.4 shows shift in absorption peak with a sensitivity of 95.76 GHz/RIU and 100 GHz/RIU for first and second band respectively.
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来源期刊
Optik
Optik 物理-光学
CiteScore
6.90
自引率
12.90%
发文量
1471
审稿时长
46 days
期刊介绍: Optik publishes articles on all subjects related to light and electron optics and offers a survey on the state of research and technical development within the following fields: Optics: -Optics design, geometrical and beam optics, wave optics- Optical and micro-optical components, diffractive optics, devices and systems- Photoelectric and optoelectronic devices- Optical properties of materials, nonlinear optics, wave propagation and transmission in homogeneous and inhomogeneous materials- Information optics, image formation and processing, holographic techniques, microscopes and spectrometer techniques, and image analysis- Optical testing and measuring techniques- Optical communication and computing- Physiological optics- As well as other related topics.
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