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Dispersion engineering with plasmonic nano structures for enhanced surface plasmon resonance sensing

机译:具有等离激元纳米结构的分散工程可增强表面等离振子共振传感

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We demonstrate numerically and experimentally the enhancement of Surface Plasmon Resonance (SPR) sensing via dispersion engineering of the plasmonic response using plasmonic nanograting. Following their design and optimization, the plasmonic nanograting structures are fabricated using e-beam lithography and lift-off process and integrated into conventional prism based Kretschmann configuration. The presence of absorptive nanograting near the metal film, provides strong field enhancement with localization and allows to control the dispersion relation which was originally dictated by a conventional SPR structure. This contributes to the enhancement in Q factor which is found to be 3–4 times higher as compared to the conventional Kretschmann configuration. The influence of the incident angle on resonance wavelength is also demonstrated both numerically and experimentally, where, only a negligible wavelength shift is observed with increasing the incident angles for plasmonic nanograting configuration. This surprising feature may be helpful for studying and utilizing light-matter interaction between plasmons and narrow linewidth media (e.g. Rb atom or molecule) having nonlocalities in their susceptibility-momentum relation. Finally, we analyze the role of plasmonic nanograting in enhancing the performance of an SPR sensor. Our results indicate that the integrated SPR-nanograting device shows a great promise as a sensor for various types of analytes.
机译:我们在数值上和实验上证明了通过使用等离激元纳米光栅进行的对等离激元响应的色散工程,表面等离振子共振(SPR)传感的增强。经过设计和优化后,使用电子束光刻和剥离工艺制造了等离子体纳米光栅结构,并将其集成到基于传统棱镜的Kretschmann配置中。在金属膜附近存在吸收性纳米光栅,提供了局部增强的场强,并允许控制最初由常规SPR结构决定的色散关系。这有助于提高Q因子,与传统的Kretschmann配置相比,Q因子提高了3-4倍。数值和实验也证明了入射角对共振波长的影响,其中,对于等离激元纳米光栅配置,随着入射角的增加,只能观察到可忽略的波长偏移。这一令人惊讶的特征可能有助于研究和利用等离激元与在其磁化率-动量关系中具有非局域性的窄线宽介质(例如,Rb原子或分子)之间的光物质相互作用。最后,我们分析了等离子体纳米光栅在增强SPR传感器性能中的作用。我们的结果表明,集成的SPR纳米化设备作为用于各种类型分析物的传感器显示出巨大的希望。

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