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从第一性原理出发来塑造磁铁矿纳米颗粒。

Shaping Magnetite Nanoparticles from First Principles.

机构信息

Dipartimento di Scienza dei Materiali, Università di Milano-Bicocca, via Roberto Cozzi 55, I-20125 Milano, Italy.

出版信息

Phys Rev Lett. 2019 Nov 1;123(18):186101. doi: 10.1103/PhysRevLett.123.186101.

Abstract

Iron oxide magnetic nanoparticles (NPs) are stimuli-responsive materials at the forefront of nanomedicine. Their realistic finite temperature simulations are a formidable challenge for first-principles methods. Here, we use density functional tight binding to open up the required time and length scales and obtain global minimum structures of Fe_{3}O_{4} NPs of realistic size (1400 atoms, 2.5 nm) and of different shapes, which we then refine with hybrid density functional theory methods to accomplish proper electronic and magnetic properties, which have never been accurately described in simulations. On this basis, we develop a general empirical formula and prove its predictive power for the evaluation of the total magnetic moment of Fe_{3}O_{4} NPs. By converting the total magnetic moment into the macroscopic saturation magnetization, we rationalize the experimentally observed dependence with shape. We also reveal interesting reconstruction mechanisms and unexpected patterns of charge ordering.

摘要

氧化铁磁性纳米粒子(NPs)是纳米医学前沿的一种对刺激有响应的材料。它们在真实有限温度下的模拟对第一性原理方法来说是一个巨大的挑战。在这里,我们使用密度泛函紧束缚方法来打开所需的时间和长度尺度,并获得实际尺寸(1400 个原子,2.5nm)和不同形状的 Fe_{3}O_{4} NPs 的全局最小结构,然后我们使用杂化密度泛函理论方法对其进行细化,以实现适当的电子和磁性质,这在模拟中从未得到准确描述。在此基础上,我们开发了一个通用的经验公式,并证明了其对评估 Fe_{3}O_{4} NPs 总磁矩的预测能力。通过将总磁矩转换为宏观饱和磁化强度,我们合理地解释了实验观察到的与形状的依赖性。我们还揭示了有趣的重构机制和意想不到的电荷有序模式。

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