Institute of Nanoscience and Nanotechnology, National Center for Scientific Research Demokritos, Athens 15310, Greece.
Nanotechnology. 2017 Jan 20;28(3):035701. doi: 10.1088/1361-6528/28/3/035701. Epub 2016 Dec 8.
In nanoparticle systems consisting of two magnetic materials (bi-magnetic nanoparticles or nanoparticles embedded in a magnetic matrix), there is a constantly growing interest in the investigation of the interplay between interparticle interactions and the nanoparticle-matrix interface exchange coupling, because of its enormous impact on a number of technological applications. The understanding of the mechanisms of such interplay is a great challenge, as it would allow controlling equilibrium and non-equilibrium magnetization dynamics of exchange coupled nanoparticles systems and finely tuning their anisotropy. Here, we provide evidence that this interplay leads to a collective superspin glass (SSG) behavior in a system of diluted ferromagnetic (FM) nanoparticles embedded in an antiferromagnetic (AFM) matrix (5% volume fraction of Co particles in Mn film matrix). We have developed a novel mesoscopic model to study the influence of interparticle interaction on the exchange bias (EB) and the dynamical behavior of assemblies of FM nanoparticles embedded in a granular AFM matrix. Our mesoscopic model is based on reducing the amount of simulated spins to the minimum number necessary to describe the magnetic structure of the system and introducing the adequate exchange parameters between the different spins. The model replicates remarkably well the observed static and dynamical SSG properties as well as the EB behavior. In addition, the proposed model well explains the role of the significant Co/Mn alloying and of the granularity of the matrix in mediating interparticle interactions through exchange and dipole-dipole coupling between the uncompensated moments of its grains and the exchange interaction at the Co/Mn interface.
在由两种磁性材料(双磁纳米粒子或嵌入磁性基质中的纳米粒子)组成的纳米粒子系统中,人们对颗粒间相互作用与纳米粒子-基质界面交换耦合之间的相互作用的研究产生了浓厚的兴趣,因为它对许多技术应用有巨大的影响。理解这种相互作用的机制是一个巨大的挑战,因为它可以控制交换耦合纳米粒子系统的平衡和非平衡磁化动力学,并精细调整它们的各向异性。在这里,我们提供了证据表明,这种相互作用导致了在稀释铁磁(FM)纳米粒子嵌入反铁磁(AFM)基质中的系统中出现集体超自旋玻璃(SSG)行为(在 Mn 薄膜基质中 Co 粒子的体积分数为 5%)。我们开发了一种新的介观模型来研究颗粒间相互作用对嵌入颗粒 AFM 基质中的 FM 纳米粒子组装体的交换偏置(EB)和动力学行为的影响。我们的介观模型基于将模拟的自旋数量减少到描述系统磁结构所必需的最小数量,并引入不同自旋之间的适当交换参数。该模型非常好地复制了观察到的静态和动态 SSG 特性以及 EB 行为。此外,所提出的模型很好地解释了 Co/Mn 合金化的显著作用以及基质的颗粒度如何通过其晶粒的未补偿磁矩与 Co/Mn 界面处的交换相互作用之间的交换和偶极-偶极耦合来介导颗粒间相互作用。