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Self-Assembled Nanometer-Scale Magnetic Networks on Surfaces: Fundamental Interactions and Functional Properties

机译:表面上的自组装纳米尺度磁网络:基本相互作用和功能特性

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摘要

Nanomagnets of controlled size, organized into regular patterns open new perspectives in the fields of nanoelectronics, spintronics, and quantum computation. Self-assembling processes on various types of substrates allow designing fine-structured architectures and tuning of their magnetic properties. Here, starting from a description of fundamental magnetic interactions at the nanoscale, we review recent experimental approaches to fabricate zero-, one-, and two-dimensional magnetic particle arrays with dimensions reduced to the atomic limit and unprecedented areal density. We describe systems composed of individual magnetic atoms, metal-organic networks, metal wires, and bimetallic particles, as well as strategies to control their magnetic moment, anisotropy, and temperature-dependent magnetic behavior. The investigation of self-assembled subnanometer magnetic particles leads to significant progress in the design of fundamental and functional aspects, mutual interactions among the magnetic units, and their coupling with the environment.
机译:大小受控的纳米磁铁组织成规则的图案,为纳米电子学,自旋电子学和量子计算领域打开了新的视野。通过在各种类型的基板上进行自组装过程,可以设计出精细的结构并调整其磁性能。在这里,从对纳米尺度上基本磁性相互作用的描述开始,我们回顾了制造尺寸减小到原子极限和空前的面密度的零,一和二维磁性粒子阵列的最新实验方法。我们描述了由单个磁性原子,金属有机网络,金属线和双金属粒子组成的系统,以及控制其磁矩,各向异性和温度相关磁行为的策略。自组装的亚纳米磁性颗粒的研究在基本和功能方面的设计,磁性单元之间的相互作用以及它们与环境的耦合方面取得了重大进展。

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  • 来源
    《Advanced Functional Materials》 |2011年第7期|p.1212-1228|共17页
  • 作者单位

    Istituto di Struttura della Materia Consiglio Nazionale delle Ricerche Trieste, 34149, Italy;

    Istituto di Struttura della Materia Consiglio Nazionale delle Ricerche Trieste, 34149, Italy, University of Nova Gorica, Campus Ajdovscina Vipavska Ajdovscina, 5270, Slovenia;

    Istituto di Struttura della Materia Consiglio Nazionale delle Ricerche Trieste, 34149, Italy;

    Institutfur FestkorperforschungS. Institute for Advanced Simulation Forschungszentrum Julich &.JARA Julich, 52425, Germany;

    Institutfur FestkorperforschungS. Institute for Advanced Simulation Forschungszentrum Julich &.JARA Julich, 52425, Germany;

    Institutfur FestkorperforschungS. Institute for Advanced Simulation Forschungszentrum Julich &.JARA Julich, 52425, Germany;

    Institutfur FestkorperforschungS. Institute for Advanced Simulation Forschungszentrum Julich &.JARA Julich, 52425, Germany;

    Institutfur FestkorperforschungS. Institute for Advanced Simulation Forschungszentrum Julich &.JARA Julich, 52425, Germany;

    Institutfur FestkorperforschungS. Institute for Advanced Simulation Forschungszentrum Julich &.JARA Julich, 52425, Germany;

    Institute of Condensed Matter Physics Ecole Polytechnique Federale de Lausanne Lausanne, 1015, Switzerland;

    Institute of Condensed Matter Physics Ecole Polytechnique Federale de Lausanne Lausanne, 1015, Switzerland;

    Institute of Condensed Matter Physics Ecole Polytechnique Federale de Lausanne Lausanne, 1015, Switzerland;

    Institute of Condensed Matter Physics Ecole Polytechnique Federale de Lausanne Lausanne, 1015, Switzerland;

    Institute of Condensed Matter Physics Ecole Polytechnique Federale de Lausanne Lausanne, 1015, Switzerland;

    Max-Planck-lnstitute for Solid State Research Stuttgart, 70569, Germany;

    Max-Planck-lnstitute for Solid State Research Stuttgart, 70569, Germany;

    Max-Planck-lnstitute for Solid State Research Stuttgart, 70569, Germany;

    Catalan Institute of Nanotechnology (ICN-CIN2) Barcelona, 08193, Spain;

    Catalan Institute of Nanotechnology (ICN-CIN2) Barcelona, 08193, Spain;

    Catalan Institute of Nanotechnology (ICN-CIN2) Barcelona, 08193, Spain;

    Catalan Institute of Nanotechnology (ICN-CIN2) Barcelona, 08193, Spain;

    Catalan Institute of Nanotechnology (ICN-CIN2)Barcelona, 08193, Spain Institucio Catalana de Recerca I Estudis Avancats (ICREA), &Departament de Ffsica Universitat Autonoma de Barcelona Barcelona, 08193, Spain;

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