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Chapter 8 Plasmonic Gas and Chemical Sensing

机译:第8章等离子体气体和化学传感

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Sensitive and robust detection of gases and chemical reactions constitutes a cornerstone of scientific research and industrial applications. In an effort to reach progressively smaller reagent concentrations and sensing volumes, optical sensor technology has experienced a paradigm shift from extended thin-film systems towards engineered nanoscale devices. In this size regime, plasmonic particles and nanostructures provide an ideal toolkit for the realization of novel sensing concepts. This is due to their unique ability to simultaneously focus light into subwavelength hotspots of the electromagnetic field and to transmit minute changes of the local environment back into the farfield as a modulation of their optical response. Since the basic building blocks of a plasmonic system are commonly noble metal nanoparticles or nanostructures, plasmonics can easily be integrated with a plethora of chemically or catalytically active materials and compounds to detect processes ranging from hydrogen absorption in palladium to the detection of trinitrotoluene (TNT). In this review, we will discuss a multitude of plasmonic sensing strategies, spanning the technological scale from simple plasmonic particles embedded in extended films to highly engineered complex plasmonic nanostructures. Due to their flexibility and excellent sensing performance, plasmonic structures may open an exciting pathway towards the detection of chemical and catalytic events down to the single molecule level.
机译:气体和化学反应的敏感和鲁棒检测构成了科学研究和工业应用的基石。为了逐渐达到逐渐较小的试剂浓度和感测体积,光学传感器技术已经经历了从延伸的薄膜系统朝向工程纳米级装置的范式转变。在这种尺寸的状态下,等离子体颗粒和纳米结构提供了一种理想的工具包,用于实现新颖的传感概念。这是由于它们的独特能力将光聚焦到电磁场的亚波长热点,并且将本地环境的微小变化传递回Farfield作为它们的光学响应的​​调制。由于等离子体系统的基本构建块是常见的金属纳米颗粒或纳米结构,因此可以容易地与血清化学或催化活性物质和化合物集成的血浆,以检测从钯的氢吸收到TrinitroLuene(TNT)的过程中的过程。在本综述中,我们将讨论跨越跨越延伸薄膜的简单等离子体颗粒的技术规模的众多等级传感策略,以高度工程化复合等离子体纳米结构。由于它们的灵活性和优异的感测性能,等离子体结构可以打开令人兴奋的途径,以便将化学和催化事件的检测到单个分子水平。

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