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Optical Interrogation Techniques for Nanophotonic Biochemical Sensors

机译:纳米光子生化传感器的光学询问技术

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摘要

The manipulation of light via nanoengineered surfaces has excited the optical community in the past few decades. Among the many applications enabled by nanophotonic devices, sensing has stood out due to their capability of identifying miniscule refractive index changes. In particular, when free-space propagating light effectively couples into subwavelength volumes created by nanostructures, the strongly-localized near-fields can enhance light’s interaction with matter at the nanoscale. As a result, nanophotonic sensors can non-destructively detect chemical species in real-time without the need of exogenous labels. The impact of such nanophotonic devices on biochemical sensor development became evident as the ever-growing research efforts in the field started addressing many critical needs in biomedical sciences, such as low-cost analytical platforms, simple quantitative bioassays, time-resolved sensing, rapid and multiplexed detection, single-molecule analytics, among others. In this review, the optical transduction methods used to interrogate optical resonances of nanophotonic sensors will be highlighted. Specifically, the optical methodologies used thus far will be evaluated based on their capability of addressing key requirements of the future sensor technologies, including miniaturization, multiplexing, spatial and temporal resolution, cost and sensitivity.
机译:在过去的几十年中,通过纳米工程表面对光的操纵激发了光学界的兴趣。在纳米光子器件支持的众多应用中,传感技术因其能够识别微小的折射率变化而脱颖而出。特别是,当自由空间传播的光有效地耦合到纳米结构产生的亚波长体积中时,强定位的近场可以增强光与纳米级物质的相互作用。结果,纳米光子传感器可以无损地实时检测化学物质,而无需外部标记。随着该领域不断增长的研究努力开始满足生物医学领域的许多关键需求,例如低成本分析平台,简单的定量生物测定,时间分辨传感,快速和快速的研究,这种纳米光子设备对生化传感器发展的影响变得显而易见。多重检测,单分子分析等。在这篇综述中,将重点探讨用于询问纳米光子传感器光学共振的光学转导方法。具体而言,将根据其解决未来传感器技术的关键要求(包括小型化,多路复用,空间和时间分辨率,成本和灵敏度)的能力来评估迄今为止使用的光学方法。

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