论文标题
SERS的强光/物质耦合
Strong light/matter coupling for SERS
论文作者
论文摘要
对于广泛的健康应用,无标签的传感是必不可少的,而微音调为追求重要目标提供了创新的技术解决方案。已经表明,通过光激发在腔和分子之间形成的强光/物质耦合通过对分子分析的深刻见解,从而增强了生物学和临床应用。多层腔所提出的架构旨在促进光与物质之间的强大相互作用。顶层由银色AG多形特征制成,在合成和表征后,将其固定在表面上,而一层含氧氧化物ITO被翻转以产生两个不同的布局。对模式行为进行了调查,以描述两个布局。实验和数值结果表明ITO/SIO2/SPACER/AG多形特征设计的强光/物质相互作用。为了表征光/物质耦合,将荧光团沉积在表面上。然后,通过将实验数据与三个机械振荡器的模型整合在一起来检查抗骨骼能量。为了显示系统的灵敏度,使用牛血清白蛋白(BSA)蛋白再次进行了分析。该蛋白质是水溶性的,并且表现出红外吸收带(酰胺I),同时也活跃在拉曼地区。此外,它可能会始终与Ag多形特征结合。证明了出色的灵敏度,从而可以使用图像分析来捕获BSA的表面增强拉曼散射。总之,建议的感应方法提出了高度敏感的生物分子检测技术的新可能性,并在用作研究分子模式的基本感应技术时会鼓励结果。
For a wide range of health applications, label-free sensing is essential, and micro-photonics offers innovative technical solutions to pursue important objectives. It has been shown that the strong light/matter coupling formed between a cavity and molecules through light excitation enhances biological and clinical applications by providing deep insights into molecular analysis. The multilayer cavity's proposed architecture is meant to promote a robust interaction between light and matter. The top layer was made of silver Ag multi-shape features that, after being synthesized and characterized, were immobilized on the surface, while a layer of indium tin oxide ITO was flipped to produce two distinct layouts. An investigation of the mode behavior was conducted to describe the two layouts; experimental and numerical results point to a strong light/matter interaction by the ITO/SiO2/spacer/Ag multi-shape feature design. For the characterization of the light/matter coupling, a fluorophore was deposited on the surface; the anticrossing energy was then examined by integrating the experimental data with a model of three mechanical oscillators. To show the system's sensitivity, the analysis was carried out again using bovine serum albumin (BSA) protein. The protein is water-soluble and exhibits an infrared absorption band (amide I), while also being active in the Raman region. Besides, it may consistently bind to Ag multi-shape features. The excellent sensitivity was demonstrated, enabling the use of image analysis to capture the surface-enhanced Raman scattering of the BSA. In conclusion, the suggested sensing approach brings up fresh possibilities for highly sensitive biomolecule detection techniques and encourages results when used as a fundamental sensing technique to investigate molecular patterns.