首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Ultrasensitive analyte detection with plasmonic paper dipsticks and swabs integrated with branched nanoantennas
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Ultrasensitive analyte detection with plasmonic paper dipsticks and swabs integrated with branched nanoantennas

机译:使用等离子纸量油尺和拭子与分支的纳米天线集成的超灵敏分析物检测

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摘要

Paper-based substrates integrated with plasmonic nanostructures and combined with surface enhanced Raman spectroscopy (SERS) offer a flexible and lightweight platform for the ultrasensitive optical detection of analytes on any surface. Here, we incorporated multibranched gold nanoantennas (MGNs) on inexpensive filter paper to design MGN-paper dipsticks and swabs for SERS mediated sensing of chemicals, proteins, and pesticides adsorbed on fruits. MGNs are anisotropic nanostructures consisting of a core which serves as the antenna and protrusions that serve as emitters redistributing incident light. The nanoantenna effect gives rise to intense electromagnetic fields on the tips of the protrusions that enabled a detection of 100 pM of 1,4-benzenedithiol and 100 fM of human serum albumin labeled with indocyanine green with the MGN-paper dipsticks. Further, MGN-paper swabs enabled the detection of 62.5 pg of solid state 4-aminothiophenol on a planar surface, and 26.3 mu g of methyl parathion adsorbed on an apple. Finite difference time domain simulations demonstrated that the nanoantenna effect can be systematically modulated by altering the core-to-protrusion ratio to generate a similar to 65x enhancement in the electromagnetic fields localized on the protrusions which may ultimately result in sub- femtomolar to zeptomolar detection sensitivities.
机译:集成了等离子体纳米结构并与表面增强拉曼光谱(SERS)结合的纸基基材为任何表面上的分析物的超灵敏光学检测提供了灵活而轻巧的平台。在这里,我们将多支金纳米天线(MGN)结合在廉价的滤纸上,以设计MGN纸量油尺和药签,用于SERS介导的水果中吸附的化学物质,蛋白质和农药的感测。 MGN是各向异性的纳米结构,由用作天线的芯和用作重新分配入射光的发射器的突起组成。纳米天线效应会在突起的尖端产生强烈的电磁场,从而可以使用MGN-纸试纸检测100 pM的1,吲哚菁绿标记的人血清白蛋白。此外,MGN纸签能够检测到平面上62.5 pg固态4-氨基硫酚和26.3μg甲基对硫磷吸附在苹果上。时域有限差分仿真表明,可以通过改变芯凸比来对纳米天线效应进行系统地调制,从而在突出部上定位的电磁场中产生类似于65倍的增强,最终可能导致亚飞摩尔级到纳米级的检测灵敏度。 。

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