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Ag-modified Au nanocavity SERS substrates

机译:银修饰的金纳米腔SERS基底

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The engineering of cavity void metallic arrays allows to vary the plasmon-polariton mode energies from the near infrared to the ultraviolet through the tuning of the void height and diameter, and the selection of the appropriate material. Typically Au nanocavity substrates can be grown with better reproducibility, homogeneity, and stability, while Ag structures display significantly larger SERS enhancements. To exploit these two apparently excluding aspects, quality and enhancement, we report a detailed study of 500 nm Au-nanocavity templates modified by the controlled electrochemical deposition of 100 Ag layers, a thickness similar to the visible light skin-depth of bulk Ag. The SERS amplification of the ordered cavity-arrays is determined using 4-mercaptopyridine as a non-electronic resonant molecular probe. The ultrathin Ag layer modification of the Au substrates results in a strong amplification of the SERS signal both in the red and the green part of the spectrum, and in a spectral shift of the Raman resonance scans. These observations are assigned to Ag-induced changes in the plasmon-polariton response of the nanostructure. The reported results provide a general platform for the preparation of renewable SERS-active substrates that combine the durability and higher quality of Au nanotemplates, with the enhanced SERS amplification factors of Ag.
机译:空腔金属阵列的工程设计允许通过调整空隙的高度和直径以及选择合适的材料,将等离激元-极化子模式能量从近红外改变为紫外。通常,Au纳米腔基质可以更好的重现性,均质性和稳定性来生长,而Ag结构则显示出明显更大的SERS增强。为了利用这两个明显排除的方面,质量和增强性,我们报告了对500 nm金纳米模板的详细研究,该模板通过100个Ag层的受控电化学沉积进行了修饰,其厚度类似于块状Ag的可见光趋肤深度。使用4-巯基吡啶作为非电子共振分子探针确定有序腔阵列的SERS扩增。 Au基板的超薄Ag层修饰会导致光谱的红色和绿色部分中的SERS信号强烈放大,并导致拉曼共振扫描的光谱偏移。这些观察结果被归因于银诱导的纳米结构的等离振子-极化反应中的变化。报道的结果为制备可再生SERS活性底物提供了一个通用平台,该平台结合了金纳米模板的耐用性和更高的质量以及增强的Ag SERS扩增因子。

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