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Background-Suppressed Surface-Enhanced Molecular Detection by Metamaterial Infrared Absorber

机译:超材料红外吸收剂的背景抑制表面增强分子检测

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A background-suppressed surface-enhanced molecular detection technique is experimentally demonstrated by utilizing the resonant coupling of plasmonic modes of a metamaterial absorber and Infrared (IR) vibrational modes of molecules. The fabricated metamaterial consisted of one-dimensional (1D) array of Au micro-ribbons on a thick Au film separated by an MgF_2 gap layer. The surface structures were designed to exhibit an anomalous IR absorption at ~ 3000 cm~(-1), which spectrally overlapped with C-H stretching vibrational modes. 16-Mercaptohexadecanoic acid (16-MHDA) was used as a test molecule, which formed a 2-nm thick self-assembled monolayer (SAM) with their thiol head-group chemisorbed on the Au surface. In the FTIR measurements, the symmetric and asymmetric C-H stretching modes of the 16-MHDA were clearly observed as Fano-like anti-resonance peaks within a broad plasmonic absorption of the metamaterial. The low-background detection scheme with tailored plasmonic enhancement by the metamaterial absorber dramatically improved the sensitivity down to ~ 1.8 attomoles within the diffraction-limited IR beam spot. Our metamaterial approach thus may open up new avenues for realizing ultrasensitive IR inspection technologies.
机译:通过利用超材料吸收体的等离振子模式与分子的红外(IR)振动模式的共振耦合,实验证明了一种背景抑制的表面增强分子检测技术。所制造的超材料由厚的Au膜(由MgF_2间隙层隔开)上的Au微带的一维(1D)阵列组成。表面结构被设计为在〜3000 cm〜(-1)处表现出异常的红外吸收,其光谱与C-H拉伸振动模式重叠。使用16-巯基十六烷酸(16-MHDA)作为测试分子,形成2纳米厚的自组装单层(SAM),其硫醇头基化学吸附在Au表面上。在FTIR测量中,清楚地观察到16-MHDA的对称和不对称C-H拉伸模式为超材料的宽等离子吸收内的类Fano类反共振峰。通过超材料吸收体进行定制的等离激元增强的低背景检测方案,将衍射限制的红外束斑内的灵敏度显着提高到了约1.8 attomole。因此,我们的超材料方法可能为实现超灵敏的IR检查技术开辟新的途径。

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