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基于亚 10nm 间隙的大规模同轴零模谐振器的高对比度红外吸收光谱。

High-Contrast Infrared Absorption Spectroscopy via Mass-Produced Coaxial Zero-Mode Resonators with Sub-10 nm Gaps.

机构信息

Department of Electrical and Computer Engineering , University of Minnesota , Minneapolis , Minnesota 55455 , United States.

Department of Aeronautics and Astronautics , Massachusetts Institute of Technology , Cambridge , Massachusetts 02139 , United States.

出版信息

Nano Lett. 2018 Mar 14;18(3):1930-1936. doi: 10.1021/acs.nanolett.7b05295. Epub 2018 Feb 22.

Abstract

We present a wafer-scale array of resonant coaxial nanoapertures as a practical platform for surface-enhanced infrared absorption spectroscopy (SEIRA). Coaxial nanoapertures with sub-10 nm gaps are fabricated via photolithography, atomic layer deposition of a sacrificial AlO layer to define the nanogaps, and planarization via glancing-angle ion milling. At the zeroth-order Fabry-Pérot resonance condition, our coaxial apertures act as a "zero-mode resonator (ZMR)", efficiently funneling as much as 34% of incident infrared (IR) light along 10 nm annular gaps. After removing AlO in the gaps and inserting silk protein, we can couple the intense optical fields of the annular nanogap into the vibrational modes of protein molecules. From 7 nm gap ZMR devices coated with a 5 nm thick silk protein film, we observe high-contrast IR absorbance signals drastically suppressing 58% of the transmitted light and infer a strong IR absorption enhancement factor of 10∼10. These single nanometer gap ZMR devices can be mass-produced via batch processing and offer promising routes for broad applications of SEIRA.

摘要

我们提出了一种晶圆级的共振同轴纳米孔阵列,作为表面增强红外吸收光谱(SEIRA)的实用平台。通过光刻、原子层沉积牺牲 AlO 层来定义纳米间隙以及通过掠角离子铣削进行平坦化,制造出具有小于 10nm 间隙的同轴纳米孔。在零阶法布里-珀罗共振条件下,我们的同轴孔作为一个“零模谐振器(ZMR)”,有效地将多达 34%的入射红外(IR)光沿着 10nm 的环形间隙引导。在去除间隙中的 AlO 并插入丝蛋白后,我们可以将环形纳米间隙中的强光学场耦合到蛋白质分子的振动模式中。从涂有 5nm 厚丝蛋白膜的 7nm 间隙 ZMR 器件中,我们观察到高对比度的红外吸收信号,大大抑制了 58%的透射光,并推断出强的红外吸收增强因子为 10∼10。这些单个纳米间隙 ZMR 器件可以通过批量处理进行大规模生产,并为 SEIRA 的广泛应用提供了有前途的途径。

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