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利用等离子体纳米粒子增强近表面波导的消逝波耦合。

Enhancing Evanescent Wave Coupling of Near-Surface Waveguides with Plasmonic Nanoparticles.

机构信息

Centre d'Optique, Photonique et Laser, Université Laval, 2375 Rue de la Terrasse, Québec, QC G1V 0A6, Canada.

Département de Chimie, Université Laval, 2375 Rue de la Terrasse, Québec, QC G1V 0A6, Canada.

出版信息

Sensors (Basel). 2023 Apr 13;23(8):3945. doi: 10.3390/s23083945.

Abstract

Evanescent field excitation is a powerful means to achieve a high surface-to-bulk signal ratio for bioimaging and sensing applications. However, standard evanescent wave techniques such as TIRF and SNOM require complex microscopy setups. Additionally, the precise positioning of the source relative to the analytes of interest is required, as the evanescent wave is critically distance-dependent. In this work, we present a detailed investigation of evanescent field excitation of near-surface waveguides written using femtosecond laser in glass. We studied the waveguide-to-surface distance and refractive index change to attain a high coupling efficiency between evanescent waves and organic fluorophores. First, our study demonstrated a reduction in sensing efficiency for waveguides written at their minimum distance to the surface without ablation as the refractive index contrast of the waveguide increased. While this result was anticipated, it had not been previously demonstrated in the literature. Moreover, we found that fluorescence excitation by waveguides can be enhanced using plasmonic silver nanoparticles. The nanoparticles were also organized in linear assemblies, perpendicular to the waveguide, with a wrinkled PDMS stamp technique, which resulted in an excitation enhancement of over 20 times compared to the setup without nanoparticles.

摘要

消逝场激发是实现生物成像和传感应用中高表面-体信号比的有力手段。然而,标准的消逝波光技术,如全内反射荧光显微镜和近场光学显微镜,需要复杂的显微镜设置。此外,需要精确地将光源定位在感兴趣的分析物上,因为消逝波对距离非常敏感。在这项工作中,我们对使用飞秒激光在玻璃中写入的近表面波导的消逝场激发进行了详细的研究。我们研究了波导到表面的距离和折射率变化,以实现消逝波与有机荧光团之间的高耦合效率。首先,我们的研究表明,随着波导的折射率对比度增加,在没有烧蚀的情况下,波导写在距表面的最小距离处的传感效率会降低。虽然这一结果是可以预期的,但之前在文献中尚未得到证明。此外,我们发现可以使用等离子体银纳米粒子增强波导的荧光激发。纳米粒子还通过皱缩的 PDMS 压印技术,以线性组件的形式垂直于波导进行组织排列,与没有纳米粒子的设置相比,激发增强了 20 多倍。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a365/10144640/05d9a7a9c705/sensors-23-03945-g001.jpg

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