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交换耦合磁性FeO@CoFeO@FeO纳米颗粒洋葱结构的详细研究。

A Detailed Investigation of the Onion Structure of Exchanged Coupled Magnetic FeO@CoFeO@FeO Nanoparticles.

作者信息

Sartori Kevin, Musat Anamaria, Choueikani Fadi, Grenèche Jean-Marc, Hettler Simon, Bencok Peter, Begin-Colin Sylvie, Steadman Paul, Arenal Raul, Pichon Benoit P

机构信息

Université de Strasbourg, CNRS, Institut de Physique et Chimie des Matériaux de Strasbourg, UMR 7504, Strasbourg F-67000, France.

Synchrotron SOLEIL, L'Orme des Merisiers, Saint Aubin BP48, Gif-sur-Yvette 91192, France.

出版信息

ACS Appl Mater Interfaces. 2021 Apr 14;13(14):16784-16800. doi: 10.1021/acsami.0c18310. Epub 2021 Mar 29.

Abstract

Nanoparticles that combine several magnetic phases offer wide perspectives for cutting edge applications because of the high modularity of their magnetic properties. Besides the addition of the magnetic characteristics intrinsic to each phase, the interface that results from core-shell and, further, from onion structures leads to synergistic properties such as magnetic exchange coupling. Such a phenomenon is of high interest to overcome the superparamagnetic limit of iron oxide nanoparticles which hampers potential applications such as data storage or sensors. In this manuscript, we report on the design of nanoparticles with an onion-like structure which has been scarcely reported yet. These nanoparticles consist of a FeO core covered by a first shell of CoFeO and a second shell of FeO, e.g., a FeO@CoFeO@FeO onion-like structure. They were synthesized through a multistep seed-mediated growth approach which consists consists in performing three successive thermal decomposition of metal complexes in a high-boiling-point solvent (about 300 °C). Although TEM micrographs clearly show the growth of each shell from the iron oxide core, core sizes and shell thicknesses markedly differ from what is suggested by the size increasing. We investigated very precisely the structure of nanoparticles in performing high resolution (scanning) TEM imaging and geometrical phase analysis (GPA). The chemical composition and spatial distribution of atoms were studied by electron energy loss spectroscopy (EELS) mapping and spectroscopy. The chemical environment and oxidation state of cations were investigated by Fe Mössbauer spectrometry, soft X-ray absorption spectroscopy (XAS) and X-ray magnetic circular dichroism (XMCD). The combination of these techniques allowed us to estimate the increase of Fe content in the iron oxide core of the core@shell structure and the increase of the cobalt ferrite shell thickness in the core@shell@shell one, whereas the iron oxide shell appears to be much thinner than expected. Thus, the modification of the chemical composition as well as the size of the FeO core and the thickness of the cobalt ferrite shell have a high impact on the magnetic properties. Furthermore, the growth of the iron oxide shell also markedly modifies the magnetic properties of the core-shell nanoparticles, thus demonstrating the high potential of onion-like nanoparticles to accurately tune the magnetic properties of nanoparticles according to the desired applications.

摘要

结合多种磁相的纳米颗粒因其磁性能的高模块化而为前沿应用提供了广阔前景。除了各相固有的磁性特征外,核壳结构以及进一步的洋葱状结构所产生的界面会导致诸如磁交换耦合等协同特性。这种现象对于克服阻碍数据存储或传感器等潜在应用的氧化铁纳米颗粒的超顺磁极限非常有意义。在本论文中,我们报道了一种几乎尚未见报道的具有洋葱状结构的纳米颗粒的设计。这些纳米颗粒由一个FeO核组成,该核被一层CoFeO壳和第二层FeO壳覆盖,例如,一种FeO@CoFeO@FeO洋葱状结构。它们是通过多步种子介导生长法合成的,该方法包括在高沸点溶剂(约300°C)中对金属配合物进行三次连续的热分解。尽管透射电子显微镜(TEM)显微照片清楚地显示了每一层壳从氧化铁核开始生长,但核尺寸和壳厚度与尺寸增加所暗示的明显不同。我们通过进行高分辨率(扫描)TEM成像和几何相位分析(GPA)非常精确地研究了纳米颗粒的结构。通过电子能量损失谱(EELS)映射和光谱研究了原子的化学成分和空间分布。通过Fe穆斯堡尔光谱、软X射线吸收光谱(XAS)和X射线磁圆二色性(XMCD)研究了阳离子的化学环境和氧化态。这些技术的结合使我们能够估计核壳结构的氧化铁核中Fe含量的增加以及核壳壳结构中钴铁氧体壳厚度的增加,而氧化铁壳似乎比预期的要薄得多。因此,化学成分的改变以及FeO核的尺寸和钴铁氧体壳的厚度对磁性能有很大影响。此外,氧化铁壳的生长也显著改变了核壳纳米颗粒的磁性能,从而证明了洋葱状纳米颗粒根据所需应用精确调节纳米颗粒磁性能的巨大潜力。

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