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首页> 外文期刊>Journal of Applied Physics >Non-conductive ferromagnetic carbon-coated (Co, Ni) metal/polystyrene nanocomposites films
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Non-conductive ferromagnetic carbon-coated (Co, Ni) metal/polystyrene nanocomposites films

机译:非导电铁磁碳涂层(Co,Ni)金属/聚苯乙烯纳米复合薄膜

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摘要

This article reports non-conductive ferromagnetic properties of metal/polymer nanocomposite films intended to be used for RF applications. The nanocomposite arrangement is unique showing a core double-shell structure of metal-carbon-polystyrene: M/C//P_1/P_2, where M = Co, Ni is the core material, C = graphene or carbon is the first shell acting as a protective layer against oxidation, P_1 = pyrene-terminated polystyrene is the second shell for electrical insulation, and P_2 = polystyrene is a supporting matrix (// indicates actual grafting). The nanocomposite formulation is briefly described, and the film deposition by spin-coating is detailed. Original spin-curves are reported and analyzed. One key outcome is the achievement of uniform and cohesive films at the wafer scale. Structural properties of films are thoroughly detailed, and weight and volume fractions of M/C are considered. Then, a comprehensive overview of DC magnetic and electrical properties is reported. A discussion follows on the magnetic softness of the nanocomposites vs. that of a single particle (theoretical) and the raw powder (experimental). Finally, unprecedented achievement of high magnetization (~0.6T) and ultra-high resistivity (~10~(10)μΩ cm) is shown. High magnetization comes from the preservation of the existing protective shell C, with no significant degradation on the particle net-moment, and high electrical insulation is ensured by adequate grafting of the secondary shell P_1. To conclude, the metal/polymer nanocomposites are situated in the landscape of soft ferromagnetic materials for RF applications (i.e., inductors and antennas), by means of two phase-diagrams, where they play a crucial role.
机译:本文报道了打算用于RF应用的金属/聚合物纳米复合膜的非导电铁磁性能。纳米复合材料排列独特,显示出金属-碳-聚苯乙烯的核心双壳结构:M / C // P_1 / P_2,其中M = Co,Ni是核心材料,C =石墨烯或碳是第一个充当保护层抗氧化,P_1 =-封端的聚苯乙烯是用于电绝缘的第二层壳,P_2 =聚苯乙烯是支撑基质(//表示实际接枝)。简要描述了纳米复合制剂,并详细描述了通过旋涂进行的膜沉积。报告并分析了原始的自旋曲线。一个关键的成果是在晶圆规模上获得均匀且具有粘性的薄膜。薄膜的结构特性已被详细介绍,并考虑了M / C的重量和体积分数。然后,报告了直流磁和电性能的全面概述。随后讨论了纳米复合材料的磁柔软度与单个颗粒(理论)和原料粉末(实验)的磁性之间的关系。最后,显示出前所未有的高磁化强度(〜0.6T)和超高电阻率(〜10〜(10)μΩcm)的成就。高磁化强度来自于现有保护壳C的保存,而粒子的净矩没有明显降低,并且通过辅助壳P_1的适当接枝确保了高电绝缘。总而言之,金属/聚合物纳米复合材料通过两个相位图位于用于射频应用的软铁磁材料(即电感器和天线)领域,在其中起着至关重要的作用。

著录项

  • 来源
    《Journal of Applied Physics》 |2016年第9期|093907.1-093907.10|共10页
  • 作者单位

    CEA, LETI, MINATEC Campus, Grenoble 38054, France,LTM-CNRS-UJF, CEA, LETI, Minatec Campus, Grenoble 38054, France;

    CEA, LETI, MINATEC Campus, Grenoble 38054, France;

    LTM-CNRS-UJF, CEA, LETI, Minatec Campus, Grenoble 38054, France;

    CEA, LETI, MINATEC Campus, Grenoble 38054, France;

    Universite Grenoble Alpes, INAC, Grenoble 38054, France,CEA, INAC, Grenoble 38054, France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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