首页> 外文OA文献 >Etude exhaustive de la sensibilité des Biopuces plasmoniques structurées intégrant un réseau rectangulaire 1D : effet de la transition des plasmons localisés vers les plasmons propagatifs
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Etude exhaustive de la sensibilité des Biopuces plasmoniques structurées intégrant un réseau rectangulaire 1D : effet de la transition des plasmons localisés vers les plasmons propagatifs

机译:集成一维矩形网络的结构化等离激元生物芯片的敏感性的综合研究:从局部等离激元向传播性等离激元转变的影响

摘要

Surface plasmons resonance imaging with continuous thin metallic films have become a central tool for the study of biomolecular interactions. However, in order to extend the field of applications of surface plasmons resonance systems to the trace detection of biomolecules having low molecular weight, a change in the plasmonic sensing methodology is needed. In this study, we investigate theoretically and experimentally the sensing potential of 2D nano- and micro- ribbon grating structuration on the surface of Kretschmann-based surface plasmon resonance biosensors when they are used for detection of biomolecular binding events. Numerical simulations were carried out by employing a fast and novel model based on the hybridization of two classical methods, the Fourier Modal Method and the Finite Element Method. Our calculations confirm the importance of light manipulation by means of structuration of the plasmonic thin film surfaces on the nano- and micro- scales. Not only does it highlight the geometric parameters that allow the sensitivity enhancement, and associated figures of merit, compared with the response of the conventional surface plasmon resonance biosensor based on a flat surface, but it also describes the transition from the regime where the propagating surface plasmon mode dominates to the regime where the localized surface plasmon mode dominates. An exhaustive mapping of the biosensing potential of the nano- and micro- structured biosensors surface is presented, varying the structural parameters related to the ribbon grating dimensions. New figures of merit are introduced to evaluate the performance of the structured biosensors. The structuration also leads to the creation of regions on biosensor chips that are characterized by strongly enhanced electromagnetic fields. New opportunities for further improving the bio-sensitivity are offered if localization of biomolecules can be carried out in these regions of high electromagnetic fields enhancement and confined.
机译:具有连续金属薄膜的表面等离振子共振成像已成为研究生物分子相互作用的主要工具。然而,为了将表面等离振子共振系统的应用领域扩展到痕量检测具有低分子量的生物分子,需要改变等离激元感测方法。在这项研究中,我们将在基于Kretschmann的表面等离振子共振生物传感器表面上检测二维纳米和微带光栅结构的传感潜力进行理论和实验研究,以用于检测生物分子结合事件。通过使用基于两种经典方法(傅立叶模态方法和有限元方法)的混合的快速新颖的模型进行数值模拟。我们的计算证实了通过在纳米和微米尺度上对等离激元薄膜表面进行结构化来控制光的重要性。与基于平坦表面的常规表面等离子体共振生物传感器的响应相比,它不仅突出显示了允许提高灵敏度的几何参数和相关的品质因数,而且还描​​述了从传播表面的状态过渡等离子体激元模式占主导地位的局部表面等离子体激元模式。提出了详尽的纳米和微结构生物传感器表面生物传感潜力图,改变了与带状光栅尺寸有关的结构参数。引入了新的品质因数来评估结构化生物传感器的性能。这种结构化还导致在生物传感器芯片上创建区域,这些区域的特征是电磁场大大增强。如果可以在增强和限制高电磁场的这些区域中进行生物分子的定位,则可以提供进一步提高生物敏感性的新机会。

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    Chamtouri Maha;

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  • 年度 2013
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  • 原文格式 PDF
  • 正文语种 fr
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