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Optical nanoantennas for multiband surface-enhanced infrared and raman spectroscopy

机译:用于多波段表面增强红外和拉曼光谱的光学纳米天线

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In this article we show that linear nanoantennas can be used as shared substrates for surface-enhanced Raman and infrared spectroscopy (SERS and SEIRS, respectively). This is done by engineering the plasmonic properties of the nanoantennas, so to make them resonant in both the visible (transversal resonance) and the infrared (longitudinal resonance), and by rotating the excitation field polarization to selectively take advantage of each resonance and achieve SERS and SEIRS on the same nanoantennas. As a proof of concept, we have fabricated gold nanoantennas by electron beam lithography on calcium difluoride (1-2 μm long, 60 nm wide, 60 nm high) that exhibit a transverse plasmonic resonance in the visible (640 nm) and a particularly strong longitudinal dipolar resonance in the infrared (tunable in the 1280-3100 cm ~(-1) energy range as a function of the length). SERS and SEIRS detection of methylene blue molecules adsorbed on the nanoantenna's surface is accomplished, with signal enhancement factors of 5 × 10~2 for SERS (electromagnetic enhancement) and up to 105 for SEIRS. Notably, we find that the field enhancement provided by the transverse resonance is sufficient to achieve SERS from single nanoantennas. Furthermore, we show that by properly tuning the nanoantenna length the signals of a multitude of vibrational modes can be enhanced with SEIRS. This simple concept of plasmonic nanosensor is highly suitable for integration on lab-on-a-chip schemes for label-free chemical and biomolecular identification with optimized performances.
机译:在本文中,我们证明了线性纳米天线可以用作表面增强拉曼光谱和红外光谱(分别为SERS和SEIRS)的共享基质。这是通过设计纳米天线的等离子体特性来实现的,从而使它们在可见光(横向共振)和红外光(纵向共振)中共振,并通过旋转激发场极化来有选择地利用每个共振并实现SERS和SEIRS在相同的纳米天线上。作为概念的证明,我们通过电子束光刻在二氟化钙(长1-2μm,宽60 nm,高60 nm)上制造了金纳米天线,该纳米天线在可见光(640 nm)中表现出横向等离子体共振,并且强度特别高。红外中的纵向偶极共振(可在1280-3100 cm〜(-1)能量范围内根据长度进行调节)。通过SERS和SEIRS可以完成对吸附在纳米天线表面的亚甲基蓝分子的检测,SERS(电磁增强)的信号增强因子为5×10〜2,SEIRS的信号增强因子高达105。值得注意的是,我们发现由横向共振提供的场增强足以从单个纳米天线获得SERS。此外,我们表明,通过适当调整纳米天线的长度,可以通过SEIRS增强多种振动模式的信号。等离子体纳米传感器的这种简单概念非常适合集成在芯片实验室方案中,以实现无标签的化学和生物分子鉴定,并具有优化的性能。

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