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Optical sensing of biological, chemical and ionic species through aggregation of plasmonic nanoparticles

机译:通过等离子体纳米粒子的聚集对生物,化学和离子物种进行光学传感

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Plasmonic nanoparticles made of gold and silver have attracted a great deal of research attention in various fields, such as biosensors, imaging, therapy, nanophotonics, catalysis and light harvesting due to their unique optical and electronic properties. Plasmonic nanoparticle colloids may exhibit strong colours in the visible region due to localized surface plasmon resonances, whereas their aggregates exhibit different linear and nonlinear optical properties. Therefore, a smart design of chemical interactions between analytes and the nanoparticles surface may lead to gradual optical changes, which can be probed by various sensing methods, allowing quantitative analyte detection. A significant amount of research has been carried out toward the development of plasmonic sensors based on analyte-induced aggregation of Au or Ag nanoparticles, and the sensitivity and selectivity of such plasmonic biosensors have been greatly improved over the years. In this feature article, we summarize different design strategies that have been employed to induce the aggregation of plasmonic nanoparticles upon the addition of various analytes such as DNA, proteins, organic molecules and inorganic ions. We introduce various optical assays, such as colorimetry, surface-enhanced Raman scattering, two-photon photoluminescence, dynamic light scattering, hyper-Rayleigh scattering and chiroptical activity. From the discussion, it can be concluded that plasmonic sensors based on nanoparticle aggregation offer simple, highly sensitive and selective detection of various analytes. Finally, we discuss some of the future directions of plasmonic nanosensors toward device integration for practical applications.
机译:由金和银制成的等离子纳米颗粒由于其独特的光学和电子特性,在生物传感器,成像,治疗,纳米光子学,催化和光收集等各个领域引起了广泛的研究关注。由于局部表面等离子体激元共振,等离子纳米粒子胶体可能在可见光区域显示强烈的颜色,而它们的聚集体表现出不同的线性和非线性光学性质。因此,对分析物与纳米颗粒表面之间的化学相互作用进行智能设计可能会导致逐渐发生光学变化,可以通过各种传感方法进行探测,从而实现定量分析物的检测。基于基于分析物诱导的Au或Ag纳米颗粒的聚集的等离子体传感器的开发已经进行了大量的研究,并且这些等离子体生物传感器的灵敏度和选择性多年来已经大大提高。在这篇专题文章中,我们总结了在添加各种分析物(例如DNA,蛋白质,有机分子和无机离子)后,诱导等离子体纳米粒子聚集的不同设计策略。我们介绍了各种光学检测方法,例如比色法,表面增强拉曼散射,双光子光致发光,动态光散射,超瑞利散射和按摩疗法。从讨论中可以得出结论,基于纳米粒子聚集的等离子体传感器提供了各种分析物的简单,高度灵敏和选择性的检测。最后,我们讨论了等离子体纳米传感器在面向实际应用的设备集成方面的一些未来方向。

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