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A charge optimized many-body potential for iron/iron-fluoride systems

机译:电荷优化了铁/铁氟化物系统的多体电位

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摘要

A classical interatomic potential for iron/iron-fluoride systems is developed in the framework of the charge optimized many-body (COMB) potential. This interatomic potential takes into consideration the effects of charge transfer and many-body interactions depending on the chemical environment. The potential is fitted to a training set composed of both experimental and ab initio results of the cohesive energies of several Fe and FeF2 crystal phases, the two fluorine molecules F-2 and the F-2(-1) dissociation energy curve, the Fe and FeF2 lattice parameters of the ground state crystalline phase, and the elastic constants of the body centered cubic Fe structure. The potential is tested in an NVT ensemble for different initial structural configurations as the crystal ground state phases, F-2 molecules, iron clusters, and iron nanospheres. In particular, we model the FeF2/Fe bilayer and multilayer interfaces, as well as a system of square FeF2 nanowires immersed in an iron solid. It has been shown that there exists a reordering of the atomic positions for F and Fe atoms at the interface zone; this rearrangement leads to an increase in the charge transfer among the atoms that make the interface and put forward a possible mechanism of the exchange bias origin based on asymmetric electric charge transfer in the different spin channels.
机译:用于铁/铁 - 氟化物系统的经典网状模型在电荷优化的许多身体(梳状)电位的框架中开发。根据化学环境,考虑到电荷转移和许多相互作用的影响。该潜力适用于由几种Fe和FeF2晶相的内聚能量的实验性和AB初始结果组成的训练集,这两个氟分子F-2和F-2(-1)解离能曲线,Fe和FEF2晶格参数的地态结晶相,以及体为中心的立方Fe结构的弹性常数。在NVT集合中测试电势,用于不同的初始结构配置,作为晶体接地状态相,F-2分子,铁簇和铁纳米球。特别是,我们模拟Fef2 / Fe双层和多层界面,以及浸入铁固体中的鳞片FeF2纳米线系统。已经表明,在界面区的F和Fe原子中存在原子位置的重新排序;该重排导致原子之间的电荷转移的增加,该原子在制造界面中,并基于不同自旋通道中的不对称电荷传输提出了交换偏置的可能机制。

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  • 作者单位

    Pontificia Univ Catolica Chile CEDENNA Fac Fis Ctr Invest Nanotecnol &

    Mat Avanzados CIEN UC Santiago Chile;

    West Virginia Univ Phys Dept Morgantown WV 26506 USA;

    Pontificia Univ Catolica Chile CEDENNA Fac Fis Ctr Invest Nanotecnol &

    Mat Avanzados CIEN UC Santiago Chile;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理学;化学;
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