A parylene-mediated plasmonic–photonic hybrid fiber-optic sensor and its instrumentation for miniaturized and self-referenced biosensing

等离子体子 帕利烯 光纤 材料科学 光子学 生物传感器 制作 纳米技术 光电子学 光纤传感器 生物分子 表面等离子共振 纤维 计算机科学 电信 聚合物 纳米颗粒 病理 复合材料 医学 替代医学
作者
Xin Li,Nanxi Wang,Fei Wang,Jinlong Liu,Yimin Shi,Jiahong Jiang,Hongyao Liu,Mingxiao Li,Lína Zhang,Wenchang Zhang,Yang Zhao,Lingqian Zhang,Chengjun Huang
出处
期刊:Analyst [The Royal Society of Chemistry]
卷期号:148 (8): 1672-1681 被引量:3
标识
DOI:10.1039/d3an00028a
摘要

With the development of advanced nanofabrication techniques over the past decades, different nanostructure-based plasmonic fiber-optic sensors have been developed and have presented a low limit of detection for various biomolecules. However, owing to both the dependence on complex equipment and the trade-off between the fabrication cost and sensing performance, nanostructured plasmonic fiber-optic sensors are rarely used outside laboratories. To facilitate wider application of the plasmonic fiber-optic sensors, a parylene-mediated hybrid plasmonic-photonic cavity-based sensor was developed. Compared with a similar plasmonic sensor which only works in the plasmonic mode, the proposed hybrid sensor shows a higher reproducibility (CV < 2.5%) due to its resistance to fabrication variations. Meanwhile, a self-referenced detection mechanism and a novel miniaturized system were developed to adapt to the hybrid resonance sensor. The entire system only has a weight of 263 g, and a size of 12 cm × 10 cm × 8 cm, and is especially suitable for outdoor applications in a handheld manner. In experiments, a high refractive index sensitivity of 3.148 RIU-1 and real-time biomolecule monitoring at nanomolar concentrations were achieved by the proposed system, further confirming the potential of the miniaturized system as a candidate for point-of-care health diagnostics outside laboratories.
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