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Subwavelength nickel-copper multilayers as an alternative plasmonic material

机译:亚波长镍-铜多层作为替代等离子体材料

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摘要

Surface plasmon polaritons (SPP) are electromagnetic waves bound by the collective oscillations of free carrier plasma to the surface of a conductor surrounded by dielectric. These waves can be localized, concentrated or manipulated simply by processing the conductor surface. The choice of a convenient conductor is quite limited by the availability of natural materials and strong absorption losses associated with free electron plasma. For this reason new alternative plasmonic materials are actively being researched and developed. Most common approaches to this problem include doping of nonmetallic materials and fabrication of metal-dielectric nanocomposite metamaterials. In this contribution we perform an analysis of the suitability of the use of the heterometallic multilayers consisting of copper and nickel. Copper is an excellent plasmonic material, but the problem is formation of natural copper oxides on the surface. Therefore for this purpose a layer of nickel is used as a protection against oxidation of copper. Laminate composite structures of alternating nanocrystalline nickel and copper films on a cold-rolled polycrystalline copper foils were fabricated by electrochemical deposition technique. We simulated the electromagnetic properties of subwavelength Cu/Ni multilayers by the 2D finite element method using realistic material parameters to assess different electromagnetic modes. Our results show that the pair Cu/Ni can be viewed as an alternative tailorable plasmonic material. It has also been shown that it is possible to fabricate plasmonic structures without applying any complex lithographic processes.
机译:表面等离振子极化子(SPP)是电磁波,由自由载流子等离子体的集体振荡束缚到被电介质包围的导体表面。这些波可以简单地通过处理导体表面来定位,集中或操纵。方便导体的选择受到天然材料的可用性和与自由电子等离子体相关的强吸收损耗的极大限制。因此,正在积极研究和开发新的替代等离子体材料。解决该问题的最常见方法包括非金属材料的掺杂和金属电介质纳米复合超材料的制造。在这一贡献中,我们对使用由铜和镍组成的多层金属的适用性进行了分析。铜是一种出色的等离子体材料,但问题是在表面形成了天然氧化铜。因此,为此目的,镍层用作防止铜氧化的保护层。通过电化学沉积技术,在冷轧多晶铜箔上制备了交替排列的纳米晶镍和铜膜的层状复合结构。我们使用实际材料参数通过2D有限元方法模拟了亚波长Cu / Ni多层膜的电磁特性,以评估不同的电磁模式。我们的结果表明,Cu / Ni对可以看作是另一种可定制的等离激元材料。还显示出可以在不应用任何复杂的光刻工艺的情况下制造等离子体结构。

著录项

  • 来源
    《Optical and quantum electronics 》 |2018年第5期| 203.1-203.9| 共9页
  • 作者单位

    Centre of Microelectronic Technologies, Institute of Chemistry, Technology and Metallurgy, University of Belgrade;

    Centre of Microelectronic Technologies, Institute of Chemistry, Technology and Metallurgy, University of Belgrade;

    Centre of Microelectronic Technologies, Institute of Chemistry, Technology and Metallurgy, University of Belgrade;

    Institute of Physics, University of Belgrade;

    Institute of Physics, University of Belgrade;

    Centre of Microelectronic Technologies, Institute of Chemistry, Technology and Metallurgy, University of Belgrade;

    Centre of Microelectronic Technologies, Institute of Chemistry, Technology and Metallurgy, University of Belgrade;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Plasmonic materials; Optical multilayers; Heterometallic composites;

    机译:等离子体材料;光学多层板;非金属复合材料;

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