论文标题

量子等离子体传感器

Quantum Plasmonic Sensors

论文作者

Lee, Changhyoup, Lawrie, Benjamin, Pooser, Raphael, Lee, Kwang-Geol, Rockstuhl, Carsten, Tame, Mark

论文摘要

等离子体传感器的非凡灵敏度在光学和光子学界众所周知。这些传感器同时利用电磁场的增强和定位,接近金属和介电之间的界面。例如,这可以使集成生物化学传感器的设计远低于衍射极限。尽管它们实现了实现和成功的商业化,但等离激元传感器的灵敏度和相关的精度开始达到其基本的经典限制,该量子被光的量子波动(称为shot-noise极限)给出。为了将这些传感器的传感性能超出经典限制,量子资源越来越多地使用。该研究领域已被称为“量子等离子传感”,近年来它在化学和生物学传感中的应用中经历了实质性活性。这篇综述旨在涵盖传感的等离激元技术和量子技术,并展示它们如何合并以增强传统方法以外的等离子传感器的性能。我们讨论了近年来为量子等离子体传感开发的一般框架,涵盖了取得进步的基本理论,并描述了使这些进步的重要作品。我们还详细描述了几项关键作品,突出了他们的动机,背后的工作原则以及未来的影响。审查的目的是为迅速发展的研究领域奠定基础,该领域目前正在出于智力好奇心以及在生物化学,医学和制药研究方面的广泛实用应用。

The extraordinary sensitivity of plasmonic sensors is well known in the optics and photonics community. These sensors exploit simultaneously the enhancement and the localization of electromagnetic fields close to the interface between a metal and a dielectric. This enables, for example, the design of integrated biochemical sensors at scales far below the diffraction limit. Despite their practical realization and successful commercialization, the sensitivity and associated precision of plasmonic sensors are starting to reach their fundamental classical limit given by quantum fluctuations of light -- known as the shot-noise limit. To improve the sensing performance of these sensors beyond the classical limit, quantum resources are increasingly being employed. This area of research has become known as `quantum plasmonic sensing' and it has experienced substantial activity in recent years for applications in chemical and biological sensing. This review aims to cover both plasmonic and quantum techniques for sensing, and shows how they have been merged to enhance the performance of plasmonic sensors beyond traditional methods. We discuss the general framework developed for quantum plasmonic sensing in recent years, covering the basic theory behind the advancements made, and describe the important works that made these advancements. We also describe several key works in detail, highlighting their motivation, the working principles behind them, and their future impact. The intention of the review is to set a foundation for a burgeoning field of research that is currently being explored out of intellectual curiosity and for a wide range of practical applications in biochemistry, medicine, and pharmaceutical research.

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