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Magnetic microscopy/metrology potential of metamaterials using nanosized spherical particle arrays

机译:使用纳米级球形颗粒阵列的超材料的磁显微镜/计量学潜力

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摘要

Techniques for imaging and characterizing magnetic samples have been widely used in many areas of research involving magnetic materials. Nowadays, magnetic microscopy techniques play a critical role in characterizing magnetic thin film structures. In considering the various techniques, optical techniques offer some unique advantages over alternative techniques (eg. MFM), as they are least affected by magnetic noise and, for the same underlying reasons, have also proven to be more suitable for "high speed" magnetization measurements of magnetization dynamics, which are increasingly important in many of today's research scopes. At the same time, development of metamaterials are opening the doors for newly behaving materials, such as those demonstrating negative refractive index, potentially useful in a variety of applications, such as imaging. Metamaterials deploying arrays of silicon particles, and even alternating silicon particles and split ring resonators have recently been shown to demonstrate interesting behavior, such as negative magnetic susceptibility and large resonant peaks in the Terahertz regime. Such high frequencies offer the potential bandwidth of extraordinarily fast dynamics, which are increasingly being generated in magnetic materials, for example, in optically-induced demagnetization and all-optical magnetic recording. Here, initial investigations toward ultra high-speed imaging and/or information extraction from magnetic samples is discussed considering metamaterials deploying mainly spherical particle arrays. In addition to the frequency spectrums of the system, the response of the system to external magnetic fields and background permeability changes due to external fields are investigated. Our results suggest a significant potential of metamaterials for use in probing information from magnetic materials.
机译:用于成像和表征磁性样品的技术已广泛用于涉及磁性材料的许多研究领域。如今,磁显微技术在表征磁性薄膜结构中起着至关重要的作用。在考虑各种技术时,光学技术相对于替代技术(例如MFM)具有一些独特的优势,因为它们受磁噪声的影响最小,并且由于相同的根本原因,还被证明更适合“高速”磁化磁化动力学的测量,在当今许多研究领域中越来越重要。同时,超材料的发展为新出现的材料打开了大门,例如那些表现出负折射率的材料,这些材料可能在各种应用(例如成像)中有用。最近已经显示出部署硅粒子阵列的超材料,甚至包括交替的硅粒子和裂环共振器,它们都表现出令人感兴趣的行为,例如负磁化率和太赫兹状态下的大共振峰。如此高的频率提供了超快速动态特性的潜在带宽,这种动态带宽正越来越多地在磁性材料中产生,例如,在光致退磁和全光磁记录中。在这里,考虑到主要部署球形颗粒阵列的超材料,讨论了对超高速成像和/或从磁性样品中提取信息的初步研究。除了系统的频谱外,还研究了系统对外部磁场的响应以及由于外部磁场导致的背景磁导率变化。我们的结果表明,超材料在探测磁性材料中的信息方面具有巨大的潜力。

著录项

  • 来源
    《Smart nano-micro materials and devices》|2011年|p.82042V.1-82042V.6|共6页
  • 会议地点 Hawthorn(AU)
  • 作者单位

    Advanced Concepts Group of Data Storage Institute, A*STAR, 5, Engineering Drive I, Singapore, 117608;

    Advanced Concepts Group of Data Storage Institute, A*STAR, 5, Engineering Drive I, Singapore, 117608;

    Advanced Concepts Group of Data Storage Institute, A*STAR, 5, Engineering Drive I, Singapore, 117608;

    Nonlinear Physics Centre, Research School of Physical Sciences and Engineering,Australian National University, Canberra ACT 0200, Australia;

    Nonlinear Physics Centre, Research School of Physical Sciences and Engineering,Australian National University, Canberra ACT 0200, Australia;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 智能材料;
  • 关键词

    metamaterial; magnetic microscopy; magneto-optic imaging;

    机译:超材料磁镜磁光成像;

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