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Split-Wedge Antennas with Sub-5 nm Gaps for Plasmonic Nanofocusing

机译:具有5纳米以下间隙的等离子楔形天线用于等离子纳米聚焦。

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摘要

We present a novel plasmonic antenna structure, a split-wedge antenna, created by splitting an ultrasharp metallic wedge with a nanogap perpendicular to its apex. The nanogap can tightly confine gap plasmons and boost the local optical field intensity in and around these opposing metallic wedge tips. This three-dimensional split-wedge antenna integrates the key features of nanogaps and sharp tips, i.e., tight field confinement and three-dimensional nanofocusing, respectively, into a single platform. We fabricate split-wedge antennas with gaps that are as small as 1 nm in width at the wafer scale by combining silicon V-grooves with template stripping and atomic layer lithography. Computer simulations show that the field enhancement and confinement are stronger at the tip–gap interface compared to what standalone tips or nanogaps produce, with electric field amplitude enhancement factors exceeding 50 when near-infrared light is focused on the tip–gap geometry. The resulting nanometric hotspot volume is on the order of λ3/106. Experimentally, Raman enhancement factors exceeding 107 are observed from a 2 nm gap split-wedgeantenna, demonstrating its potential for sensing and spectroscopyapplications.
机译:我们提出了一种新颖的等离激元天线结构,即劈裂楔形天线,它是通过将超锐利的金属楔形物与垂直于其顶点的纳米间隙分开而制成的。纳米间隙可以紧密限制间隙等离激元,并提高这些相对的金属楔形尖端内及其周围的局部光场强度。这款三维裂隙楔形天线将纳米间隙和尖锐尖端的关键特征集成在一起,即分别将近场限制和三维纳米聚焦集中到一个平台中。通过将硅V型槽与模板剥离和原子层光刻技术相结合,我们在晶圆级制造了缝隙楔形天线,缝隙的宽度小至1 nm。计算机仿真表明,与独立的尖端或纳米间隙相比,在尖端间隙界面处的场增强和约束更强,当近红外光聚焦在尖端间隙几何结构上时,电场幅度增强因子超过50。产生的纳米热点体积约为λ 3 / 10 6 。在实验中,从2 nm的缝隙楔形中观察到拉曼增强因子超过10 7 天线,展示了其在传感和光谱学上的潜力应用程序。

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