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A Review of an Ultrafast and Sensitive Bioassay Platform Technology: Microwave-accelerated Metal-enhanced Fluorescence

机译:超快和灵敏的生物测定平台技术的综述:微波加速金属增强荧光

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Since the publication of our first paper on the microwave-accelerated metal-enhanced fluorescence (MAMEF) bioassay platform technology in 2005 (Aslan and Geddes, Anal Chem 77:8057–8067, 2005), we have been repeatedly asked to comment on the advantages of “microwave heating” with plasmonic nanostructures over conventional heating for bioassays by many of our colleagues in the community. We note that one can find a couple of review articles, one by Mingos (Gabriel et al., Chem Soc Rev 27:213–223, 1998) and another by Thostenson and Chou (Manufacturing 30:1055–1071, 1999), summarizing the fundamentals and several applications of microwave processing of chemical compounds and composite materials, respectively. These review articles also present a direct comparison of microwave heating with conventional heating with respect to the processing of materials and microwave-assisted synthesis of chemical compounds. In this review article, we seek to remind the reader of the fundamentals of microwave heating and the interactions of microwaves with chemical and biological materials relevant to our recent work on bioassays, rather than repeating the information provided in the above-mentioned very informative reviews. We also summarize our work on MAMEF-based bioassays where we use plasmonic nanostructures to additionally plasmon-enhance fluorescence signatures.
机译:自2005年发表第一篇有关微波加速金属增强荧光(MAMEF)生物测定平台技术的论文(Aslan和Geddes,Anal Chem 77:8057–8067,2005)以来,我们一再被要求评论其优势。我们社区的许多同事对具有等离激元纳米结构的“微波加热”进行了生物测定的常规加热。我们注意到,可以找到几篇评论文章,其中一篇是Mingos(Gabriel等人,Chem Soc Rev 27:213–223,1998),另一篇是Thostenson和Chou(Manufacturing 30:1055–1071,1999),分别对化合物和复合材料进行微波处理的原理和几种应用。这些评论文章还就材料的加工和化合物的微波辅助合成,提供了微波加热与常规加热的直接比较。在这篇评论文章中,我们试图提醒读者微波加热的基本知识以及微波与我们最近在生物测定方面的工作有关的化学和生物材料的相互作用,而不是重复上述非常有用的评论中提供的信息。我们还总结了我们在基于MAMEF的生物测定中的工作,其中我们使用了等离激元纳米结构来额外增加等离激元增强的荧光特征。

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