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Large-area high-performance SERS substrates with deep controllable sub-10-nm gap structure fabricated by depositing Au film on the cicada wing

机译:通过在蝉翼上沉积金膜制成的具有深可控制的亚10纳米间隙结构的大面积高性能SERS基板

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摘要

Noble metal nanogap structure supports strong surface-enhanced Raman scattering (SERS) which can be used to detect single molecules. However, the lack of reproducible fabrication techniques with nanometer-level control over the gap size has limited practical applications. In this letter, by depositing the Au film onto the cicada wing, we engineer the ordered array of nanopillar structures on the wing to form large-area high-performance SERS substrates. Through the control of the thickness of the Au film deposited onto the cicada wing, the gap sizes between neighboring nanopillars are fine defined. SERS substrates with sub-10-nm gap sizes are obtained, which have the highest average Raman enhancement factor (EF) larger than 2 × 108, about 40 times as large as that of commercial Klarite® substrates. The cicada wings used as templates are natural and environment-friendly. The depositing method is low cost and high throughput so that our large-area high-performance SERS substrates have great advantage for chemical/biological sensing applications.
机译:贵金属纳米间隙结构支持强大的表面增强拉曼散射(SERS),可用于检测单个分子。然而,缺乏对间隙尺寸进行纳米级控制的可复制的制造技术限制了实际应用。在这封信中,通过将金膜沉积到蝉翼上,我们在机翼上设计了有序的纳米柱结构阵列,以形成大面积高性能SERS基板。通过控制沉积在蝉翼上的金膜的厚度,可以精确定义相邻纳米柱之间的间隙尺寸。获得间隙尺寸小于10 nm的SERS基板,其最高拉曼平均增强因子(EF)大于2×10 8 ,约为商业Klarite®基板的40倍。用作模板的蝉翅是天然且环保的。沉积方法成本低廉且产量高,因此我们的大面积高性能SERS基板在化学/生物传感应用中具有巨大优势。

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