AbstractTwo-dimensional heterostructures of graphene (Gr) and metal/semiconducting elements convey new direction in elect'/> Magnetic graphene/Ni-nano-crystal hybrid for small field magnetoresistive effect synthesized via electrochemical exfoliatioi deposition technique
首页> 外文期刊>Journal of materials science >Magnetic graphene/Ni-nano-crystal hybrid for small field magnetoresistive effect synthesized via electrochemical exfoliatioi deposition technique
【24h】

Magnetic graphene/Ni-nano-crystal hybrid for small field magnetoresistive effect synthesized via electrochemical exfoliatioi deposition technique

机译:电化学剥落沉积技术合成的石墨烯/镍纳米晶杂化体用于小场磁阻效应

获取原文
获取原文并翻译 | 示例
           

摘要

AbstractTwo-dimensional heterostructures of graphene (Gr) and metal/semiconducting elements convey new direction in electronic devices. They can be useful for spintronics because of small spin orbit interaction of Gr as a non-magnetic metal host with promising electrochemical stability. In this paper, we demonstrate one-step fabrication of magnetic Ni-particles entrapped within Gr-flakes based on simultaneous electrochemical exfoliation/deposition procedure by two-electrode system using platinum as the cathode electrode and a graphite foil as the anode electrode. The final product is an air stable hybrid element including Gr flakes hosting magnetic Ni-nano-crystals showing superparamagnetic-like response and room temperature giant magnetoresistance (GMR) effect at small magnetic field range. The GMR effect is originated from spin scattering through ferromagneticon-magnetic nature of Ni/Gr heterostructure and interpreted based on a phenomenological spin transport model. Our work benefits from XRD, XPS, Raman, TEM, FTIR and VSM measurements We addressed that how our results can be used for rapid manufacturing of magnetic Gr for low field magneto resistive elements and potential printed spintronic devices.
机译: 摘要 石墨烯(Gr)和金属/半导体元素的二维异质结构在电子设备中传达了新的方向。它们对自旋电子学很有用,因为作为非磁性金属主体的Gr具有良好的自旋轨道相互作用,具有良好的电化学稳定性。在本文中,我们通过两电极系统同时进行电化学剥离/沉积程序,展示了夹在Gr片中的磁性Ni粒子的一步制造工艺,该两电极系统使用铂作为阴极电极,并使用石墨箔作为阳极电极。最终产品是一种空气稳定的混合元素,其中包含寄有磁性Ni-纳米晶体的Gr片,在小磁场范围内显示出超顺磁性样响应和室温巨磁阻(GMR)效应。 GMR效应源自Ni / Gr异质结构的铁磁性/非磁性性质的自旋散射,并基于现象学的自旋输运模型进行解释。我们的工作受益于XRD,XPS,拉曼,TEM,FTIR和VSM测量。我们解决了如何将我们的结果用于快速制造低场磁阻元件和潜在印刷自旋电子器件的磁性Gr的问题。

著录项

  • 来源
    《Journal of materials science》 |2018年第5期|4171-4178|共8页
  • 作者单位

    Faculty of Physics, Shahid Beheshti University;

    Faculty of Physics, Shahid Beheshti University;

    Faculty of Physics, Shahid Beheshti University;

    Department of Physics, University of Kashan;

    Faculty of Physics, Shahid Beheshti University;

    Faculty of Physics, Shahid Beheshti University;

    Faculty of Physics, Shahid Beheshti University;

    Faculty of Physics, Shahid Beheshti University;

    Faculty of Physics, Shahid Beheshti University;

    Faculty of Physics, Shahid Beheshti University;

    Faculty of Physics, Shahid Beheshti University;

    Faculty of Physics, Shahid Beheshti University;

    Faculty of Physics, Shahid Beheshti University;

    Department of Physics, Alzahra University;

    Department of Physics, Alzahra University;

    School of Electrical and Computer Engineering, University of Tehran;

    School of Electrical and Computer Engineering, University of Tehran;

    Laser and Plasma Research Institute, Shahid Beheshti University;

    Laser and Plasma Research Institute, Shahid Beheshti University;

    Laser and Plasma Research Institute, Shahid Beheshti University;

    School of Electrical, Computer and Energy Engineering, Arizona State University;

    Materials and Nano Physics, School of ICT, KTH Royal Institute of Technology;

    Materials and Nano Physics, School of ICT, KTH Royal Institute of Technology,Department of Physics, University of Gothenburg;

    Materials and Nano Physics, School of ICT, KTH Royal Institute of Technology,Department of Physics, University of Gothenburg;

    Faculty of Life Sciences and Biotechnology, Shahid Beheshti University;

    Fouman Faculty of Engineering, College of Engineering, University of Tehran,RACED Advanced Technology Development;

    Department of Physics, University of Kashan;

  • 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
  • 关键词

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号