首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Enhanced Collective Magnetic Properties in 2D Monolayers of Iron Oxide Nanoparticles Favored by Local Order and Local 1D Shape Anisotropy
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Enhanced Collective Magnetic Properties in 2D Monolayers of Iron Oxide Nanoparticles Favored by Local Order and Local 1D Shape Anisotropy

机译:受局部有序和局部一维形状各向异性影响的氧化铁纳米颗粒二维单层中增强的集体磁性

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摘要

Magnetic nanoparticle arrays represent a very attractive research field because their collective properties can be efficiently modulated as a function of the structure of the assembly. Nevertheless, understanding the way dipolar interactions influence the intrinsic magnetic properties of nanoparticles still remains a great challenge. In this study, we report on the preparation of 2D assemblies of iron oxide nanoparticles as monolayers deposited onto substrates. Assemblies have been prepared by using the Langmuir-Blodgett technique and the SAM assisted assembling technique combined to CuAAC "click" reaction. These techniques afford to control the formation of well-defined monolayers of nanoparticles on large areas. The LB technique controls local ordering of nanoparticles, while adjusting the kinetics of CuAAC "click" reaction strongly affects the spatial arrangement of nanoparticles in monolayers. Fast kinetics favor disordered assemblies while slow kinetics favor the formation of chain-like structures. Such anisotropic assemblies are induced by dipolar interactions between nanoparticles as no magnetic field is applied and no solvent evaporation is performed. The collective magnetic properties of monolayers are 'studied as a function of average interparticle distance, local order and local shape anisotropy. We demonstrate that local control on spatial arrangement of nanoparticles in monolayers significantly strengthens dipolar interactions which enhances collective properties and results in possible super ferromagnetic order.
机译:磁性纳米粒子阵列代表了一个非常有吸引力的研究领域,因为它们的集体性质可以根据组件的结构有效地进行调制。然而,了解偶极相互作用影响纳米粒子固有磁性的方式仍然是一个巨大的挑战。在这项研究中,我们报告了以单层沉积到基质上的氧化铁纳米颗粒的二维组装的制备方法。通过使用Langmuir-Blodgett技术和SAM辅助组装技术结合CuAAC“喀哒”反应来制备组装体。这些技术提供了控制在大面积上形成明确定义的纳米颗粒单层的方法。 LB技术控制纳米颗粒的局部排列,同时调整CuAAC“点击”反应的动力学强烈影响单层纳米颗粒的空间排列。快动力学有利于无序组装,而慢动力学有利于链状结构的形成。由于不施加磁场并且不执行溶剂蒸发,因此纳米颗粒之间的偶极相互作用会诱发这种各向异性组装。研究了单层的集体磁性能,作为平均粒子间距离,局部有序和局部形状各向异性的函数。我们证明,对单层纳米颗粒空间排列的局部控制显着增强了偶极相互作用,从而增强了集体性质,并导致可能的超铁磁序。

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