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硅表面铁磁流体中磁性纳米粒子的自组装分层。

Self-Assembled Layering of Magnetic Nanoparticles in a Ferrofluid on Silicon Surfaces.

机构信息

University of Applied Sciences , An der Karlstadt 8, 27568 Bremerhaven, Germany.

Sandia National Laboratories , Albuquerque, New Mexico 87185, United States.

出版信息

ACS Appl Mater Interfaces. 2018 Feb 7;10(5):5050-5060. doi: 10.1021/acsami.7b14849. Epub 2018 Jan 23.

DOI:10.1021/acsami.7b14849
PMID:29299907
Abstract

This article describes the three-dimensional self-assembly of monodisperse colloidal magnetite nanoparticles (NPs) from a dilute water-based ferrofluid onto a silicon surface and the dependence of the resultant magnetic structure on the applied field. The NPs assemble into close-packed layers on the surface followed by more loosely packed ones. The magnetic field-dependent magnetization of the individual NP layers depends on both the rotational freedom of the layer and the magnetization of the adjacent layers. For layers in which the NPs are more free to rotate, the easy axis of the NP can readily orient along the field direction. In more dense packing, free rotation of the NPs is hampered, and the NP ensembles likely build up quasi-domain states to minimize energy, which leads to lower magnetization in those layers. Detailed analysis of polarized neutron reflectometry data together with model calculations of the arrangement of the NPs within the layers and input from small-angle scattering measurements provide full characterization of the core/shell NP dimensions, degree of chaining, arrangement of the NPs within the different layers, and magnetization depth profile.

摘要

本文描述了单分散胶体磁铁矿纳米粒子(NPs)从稀水基铁磁流体自组装到硅表面,以及所得磁结构对施加磁场的依赖性。NP 在表面上组装成密堆积层,然后是更松散堆积的层。单个 NP 层的磁场依赖磁化强度取决于层的旋转自由度和相邻层的磁化强度。对于 NP 更自由旋转的层,NP 的易轴可以很容易地沿着磁场方向取向。在更密集的堆积中,NP 的自由旋转受到阻碍,NP 集合可能会形成准畴状态以最小化能量,这导致这些层中的磁化强度降低。极化中子反射谱数据的详细分析以及对层内 NP 排列的模型计算,以及小角散射测量的输入,提供了对核/壳 NP 尺寸、链化程度、不同层内 NP 排列以及磁化深度分布的全面表征。

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