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首页> 外文期刊>Nanotechnology >Wafer-level fabrication of 3D nanoparticles assembled nanopillars and click chemistry modification for sensitive SERS detection of trace carbonyl compounds
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Wafer-level fabrication of 3D nanoparticles assembled nanopillars and click chemistry modification for sensitive SERS detection of trace carbonyl compounds

机译:3D纳米颗粒组装纳米粒子的晶片级制造,并单击化学改性以进行碱性羰基化合物的敏感SERs检测

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摘要

In this work, we develop a new method for fabricating wafer-level gold nanoparticles covered silicon nanopillars (SNPs) combined with surface chemical modification to detect trace level carbonyl compounds based on surface-enhanced Raman scattering (SERS) technique. The SNPs are fabricated with an etching process using nano masks synthesized in oxygen-plasma bombardment of photoresist, and further deposited with gold nanoparticles on the surface, thus forming a 3D 'particles on pillars' nanostructure for sensitive SERS detection. The enhancement factor (EF) of the devices for R6G detection can achieve 1.56 x 10(6) times compared with a flat Si substrate. We also developed an oximation click chemistry reaction procedure by chemically modifying the nanostructures with aminooxy dodecane thiol (ADT) self-assemble modification. The chip is further integrated with a polydimethylsiloxane (PDMS) microfluidic chamber, which allows fast and convenient detection of trace carbonyl compounds in liquid samples. The SERS detection capability was demonstrated by the dropwise addition of fluorescent carbonyl compounds before and after elution. Furthermore, the device was proved with high surface consistency(<70%) for repeated measurement, which has the potential for ppb(parts per billion) level concentration of carbonyl compounds detection.
机译:在这项工作中,我们开发了一种制造晶片级金纳米颗粒覆盖的硅纳米粒子(SNP)的新方法,该方法与表面化学改性相结合,以检测基于表面增强拉曼散射(SERS)技术的痕量羰基化合物。使用在光致抗蚀剂的氧等离子体轰击中合成的纳米掩模的纳米掩模制造SNP,并进一步沉积在表面上的金纳米颗粒,从而在柱的纳米结构上形成3D'颗粒以敏感的SERS检测。与扁平Si衬底相比,R6G检测装置的增强因子(EF)可以达到1.56×10(6)次。我们还通过用氨基氧基十二烷硫醇(ADT)自组装改性化学改性纳米结构,开发了一种血氧化咔哒化学反应程序。该芯片还与聚二甲基硅氧烷(PDMS)微流体室相结合,其允许在液体样品中快速方便地检测痕量羰基化合物。通过滴加在洗脱之前和之后的荧光羰基化合物滴加来证明SERS检测能力。此外,通过高表面一致性(<70%)证明该装置进行重复测量,其具有PPB的可能性(亿分)羰基化合物检测的水平浓度。

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