基于自参考波导干涉仪的提高灵敏度的再时映射太赫兹游标生物传感器

IF 6.2 3区 综合性期刊 Q1 Multidisciplinary
Liang Ma , Fei Fan , Weinan Shi , Yunyun Ji , Xianghui Wang , Shengjiang Chang
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引用次数: 0

摘要

光学游标效应是提高通信波段灵敏度和精度的有效机制,是相干探测中的一个突出热点。将游标增益扩展到太赫兹窗口在下一代无线通信和高分辨率传感中具有重要的吸引力。在这里,一个太赫兹游标生物传感器是利用两个重叠的马赫-曾德尔干涉仪在一个三通道金属波导。游标生物传感器的自参考特性促进了灵敏的包络,游标增益显着放大了在时频时域内轻微失谐的太赫兹干涉光谱映射的叠加的检测灵敏度和精度。在工作频率接近0.9 THz时,灵敏度可提高到22.54 THz/RIU,实验结果表明,在生化样品质量分别为107 GHz/(g/mm2)和10−8 g/mm2时,检测灵敏度和精度均有显著提高;比单个干涉仪高3000%。此外,该传感器还用于太赫兹范围内的氨基酸氧化特性曲线分析,有助于识别特定的氨基酸。在太赫兹波段操作的游标效应的验证证明了一种用于鉴定生化样品的快速和无标签辅助工具的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Retime-mapping terahertz vernier biosensor for boosting sensitivity based on self-reference waveguide interferometers

Retime-mapping terahertz vernier biosensor for boosting sensitivity based on self-reference waveguide interferometers
The optical vernier effect serves as a potent mechanism for boosting sensitivity and accuracy in the communication band, which is a prominent hotspot in coherent detection. Extending vernier gain to the terahertz window exhibits significant appeal in next-generation wireless communication and high-resolution sensing. Here, a terahertz vernier biosensor is constructed utilizing two overlapping Mach-Zehnder interferometers within a three-channel metallic waveguide. The self-reference feature of the vernier biosensor facilitates a sensitive envelope, and the vernier gain significantly amplifies the detection sensitivity and accuracy from the superposition of slightly detuned terahertz interference spectra mapping within the time-frequency-time domain. An exalting sensitivity of 22.54 THz/RIU is demonstrated at operating frequencies near 0.9 THz and experimentally shows immense sensing performance in detection sensitivity and accuracy of biochemical sample areic mass are 107 GHz/(g/mm2) and 10−8 g/mm2, respectively, presenting an enhancement of > 3000% compared to a single interferometer. Moreover, the sensor is employed to assess the amino acid oxidation characteristic curve analysis in the terahertz range, which assists in identifying specific amino acids. The validation of the vernier effect operating in the terahertz regime demonstrates the development of a rapid and label-free assistance tool for the identification of biochemical samples.
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来源期刊
Fundamental Research
Fundamental Research Multidisciplinary-Multidisciplinary
CiteScore
4.00
自引率
1.60%
发文量
294
审稿时长
79 days
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