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Feasibility Demonstration of a Massively Parallelizable Near-Field Sensor for Sub-Wavelength Defect Detection and Imaging.

机译:用于亚波长缺陷检测和成像的可大规模并行化的近场传感器的可行性演示。

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摘要

To detect and resolve sub-wavelength features at optical frequencies, beyond the diffraction limit, requires sensors that interact with the electromagnetic near-field of those features. Most instruments operating in this modality scan a single detector element across the surface under inspection because the scattered signals from a multiplicity of such elements would end up interfering with each other. However, an alternative massively parallelized configuration, consisting of a remotely interrogating array of dipoles, capable of interrogating multiple adjacent areas of the surface at the same time, was proposed in 2002.;In the present work a remotely interrogating slot antenna inside a 60nm silver slab is designed which increases the signal to noise ratio of the original system. The antenna is tuned to resonance at 600nm range by taking advantage of the plasmon resonance properties of the metal's negative permittivity and judicious shaping of the slot element. Full-physics simulations show the capability of detecting an 8nm particle using red light illumination. The sensitivity to the lambda/78 particle is attained by detecting the change induced on the antenna's far field signature by the proximate particle, a change that is 15dB greater than the scattering signature of the particle by itself.;To verify the capabilities of this technology in a readily accessible experimental environment, a radiofrequency scale model is designed using a meta-material to mimic the optical properties of silver in the 2GHz to 5GHz range. Various approaches to the replication of the metal's behavior are explored in a trade-off between fidelity to the metal's natural plasmon response, desired bandwidth of the demonstration, and ii manufacturability of the meta-material. The simulation and experimental results successfully verify the capability of the proposed near-field sensor in sub-wavelength detection and imaging not only as a proof of concept for optical frequencies but also as a potential imaging device for radio frequencies.
机译:为了在超出衍射极限的光频率下检测和解析亚波长特征,需要与那些特征的电磁近场相互作用的传感器。在这种模式下运行的大多数仪器会在被检查的表面上扫描单个检测器元件,因为来自多个此类元件的散射信号最终会相互干扰。然而,在2002年提出了另一种大规模并行化配置,该配置由一个可同时询问表面多个相邻区域的偶极子远程查询阵列组成;在本工作中,本研究工作是在60nm银内进行一个远程查询缝隙天线。平板设计可以增加原始系统的信噪比。通过利用金属的负介电常数的等离激元共振特性和明智的缝隙元件成形,将天线调谐至600nm范围的共振。全物理模拟显示了使用红光照明检测8nm粒子的能力。通过检测邻近粒子在天线的远场信号上引起的变化来获得对lambda / 78粒子的灵敏度,该变化比粒子本身的散射信号大15dB。在易于访问的实验环境中,使用超材料设计了射频比例模型,以模拟2GHz至5GHz范围内的银的光学特性。在对金属的自然等离激元响应的保真度,所需的演示带宽以及ii超材料的可制造性之间的权衡之间,探索了多种复制金属行为的方法。仿真和实验结果成功地验证了所提出的近场传感器在亚波长检测和成像中的能力,不仅可以作为光频率的概念证明,而且还可以作为潜在的射频成像设备。

著录项

  • 作者

    Mostafavi, Mahkamehossadat.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Electrical engineering.;Nanotechnology.;Electromagnetics.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 210 p.
  • 总页数 210
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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