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Functional magneto-plasmonic biosensors transducers: Modelling and nanoscale analysis

机译:功能性磁等离子体生物传感器换能器:建模和纳米级分析

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摘要

The work reports on theoretical and nanoscale characterization of Au/Co/Au multilayers used as transducers in Magneto-optical Surface Plasmon Resonance (MOSPR) biosensors. Different aspects related to the optimization of transducers are discussed. In particular, optimized sensitivity is demonstrated to depend on the full multilayer total thickness, on the Co layer thickness and its position within the film, as well as on the discrepancy between the optical constants in very thin layers with respect to bulk values. Co layer thickness and position in the trilayer are optimized to provide the best compromise between magneto-optic (MO) activity and optical losses as well as to ensure large electromagnetic (EM) fields at the Au-dielectric interface. In this sense surface sensitivity can be maximized with respect to variations in the bulk properties of the measuring fluid and ensure higher performances with respect to traditional SPR biosensors. In parallel, a comprehensive study on the structural, morphological, chemical, magnetic and optical properties of layers composing the realized magneto-plasmonic (MP) transducers is reported by comparing the results of experimental and theoretical investigations. High resolution TEM (HR-TEM) images provided a deep insight on the interfaces morphologies thus revealing a significant discrepancy between modelled and real samples basically due to sizable roughness at each metal interface. As highlighted by hysteresis loop measurements, this parameter results having a critical role in tailoring the magnetic and consequently magneto-plasmonic properties of the trilayer transducers. As a proof of concept, a simple immunoassay relative to the study of an antibody-antigen interaction in liquid phase has been investigated.
机译:这项工作报告了用作光磁表面等离子体共振(MOSPR)生物传感器换能器的Au / Co / Au多层金的理论和纳米级表征。讨论了与换能器优化有关的不同方面。特别地,证明了优化的灵敏度取决于整个多层的总厚度,Co层的厚度及其在膜中的位置,以及非常薄的层中的光学常数相对于体积值的差异。对三层中的Co层厚度和位置进行了优化,以在磁光(MO)活动和光学损耗之间取得最佳折衷,并确保在Au介电界面处具有较大的电磁场(EM)。从这个意义上说,相对于测量流体的整体性能变化,可以使表面灵敏度最大化,并确保相对于传统SPR生物传感器具有更高的性能。同时,通过比较实验和理论研究的结果,对组成已实现的磁-等离子体(MP)换能器的层的结构,形态,化学,磁和光学性质进行了全面研究。高分辨率TEM(HR-TEM)图像提供了对界面形态的深入了解,从而揭示了建模样品与实际样品之间的重大差异,这主要是由于每个金属界面处的粗糙度都很大。正如磁滞回线测量所突出显示的那样,该参数在调整三层换能器的磁特性以及因此的磁等离子体特性中起着至关重要的作用。作为概念的证明,已经研究了相对于液相中抗体-抗原相互作用的研究的简单免疫测定法。

著录项

  • 来源
    《Sensors and Actuators》 |2017年第2期|100-112|共13页
  • 作者单位

    CNR-IMM-Institute for Microelectronic and Microsystems, Unit of Lecce, strada prov,le Lecce- Monteroni, 73100 Lecce, Italy;

    Department of Physics and Astronomy, University of Padova and CNISM, Via Marzolo 8,35131 Padova, Italy;

    Institute of Materials for Electronics and Magnetism-Italian National Research Council Parco Area delle Scienze 37/A, 43124 Parma, Italy;

    Department of Physics and Astronomy, University of Padova and CNISM, Via Marzolo 8,35131 Padova, Italy;

    Institute of Materials for Electronics and Magnetism-Italian National Research Council Parco Area delle Scienze 37/A, 43124 Parma, Italy;

    Institute of Materials for Electronics and Magnetism-Italian National Research Council Parco Area delle Scienze 37/A, 43124 Parma, Italy;

    Laboratorio di Chimica Analitica, Dipartimento di Scienze e Tecnologie Biologiche ed Ambientali (Di.S.Te.BA.), Universita del Salento, via Monteroni, 73100 Lecce, Italy;

    Laboratorio di Chimica Analitica, Dipartimento di Scienze e Tecnologie Biologiche ed Ambientali (Di.S.Te.BA.), Universita del Salento, via Monteroni, 73100 Lecce, Italy;

    Institute of Materials for Electronics and Magnetism-Italian National Research Council Parco Area delle Scienze 37/A, 43124 Parma, Italy;

    Department of Physics and Astronomy, University of Padova and CNISM, Via Marzolo 8,35131 Padova, Italy;

    CNR-IMM-Institute for Microelectronic and Microsystems, Unit of Lecce, strada prov,le Lecce- Monteroni, 73100 Lecce, Italy;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Plasmonic biosensor; Magneto-plasmonic sensor; TEM; Hysteresis loop;

    机译:等离子体生物传感器;磁等离子体传感器;TEM;磁滞回线;

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