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Plasmonic improvement of microcavity biomedical sensor spectroscopic characteristics

机译:等离子体改善微腔生物医学传感器的光谱特性

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New opportunity to improve a sensetivity of a label-free biomolecule detection in sensing systems based on microcavity evanescent wave optical sensors has been recently found and is being under intensive development. Novel technique based on combination of optical resonance on microring structures with plasmon resonance. Recently developed tools based on neural network data processing can realize real-time identification of biological agents. So combining advantages of plasmon enhancing optical microcavity resonance with identification tools can give a new platform for ulta sensitive label-free biomedical sensor. Our developed technique used standard glass and polymer microspheres as sensetive elements. They are fixed in the solution flow by adhesive layer on the surface being in the field of evanescence wave. Sensitive layer have been treated by gold nanoparticel (GN) solution. Another technique used thin film gold layers deposited on the substrate below adhesive. The light from a tuneable diode laser is coupled into the microsphere through a prism and was sharply focussed on the single microsphere. Images were recorded by CMOS camera. Normalized by free spectral range resonance shift of whispering gallery mode (WGM) and a relative efficiency of their excitation were used as input data for biomolecule classification. Both biomolecules and NP injection was obtained caused WGM spectra modification. But after NP treatment spectral shift and intensity of WGM resonances in biomolecule solutions increased. WGM resonances in microspheres fixed on substrate with gold layer with optimized layer thickness in biomolecule solutions also had higher intensity and spectra modification then without gold layer.
机译:最近发现了在基于微腔渐逝波光学传感器的传感系统中提高无标记生物分子检测的灵敏度的新机会,并且正在大力开发中。基于微环结构上的光共振与等离振子共振相结合的新技术。最近开发的基于神经网络数据处理的工具可以实现生物制剂的实时识别。因此,将等离激元增强光学微腔共振的优势与识别工具相结合,可以为超灵敏的无标签生物医学传感器提供一个新的平台。我们开发的技术使用标准的玻璃和聚合物微球作为感官元素。它们通过在e逝波场中的表面上的粘合剂层固定在溶液流中。敏感层已通过金纳米粒子(GN)溶液处理。另一种技术是使用沉积在粘合剂下方的基板上的薄膜金层。来自可调谐二极管激光器的光通过棱镜耦合到微球中,并聚焦在单个微球上。图像由CMOS相机记录。通过耳语画廊模式(WGM)的自由光谱范围共振位移及其激发的相对效率进行归一化,将其用作生物分子分类的输入数据。通过WGM光谱修饰,获得了生物分子和NP注入。但是,NP处理后,生物分子溶液中WGM共振的光谱位移和强度增加。与没有金层的情况相比,固定在具有金层的微球上的WGM共振在生物分子溶液中具有优化的层厚,并且具有更高的强度和光谱修饰。

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