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Principles of weakly ordered domains in intermetallics: the cooperative effects of atomic packing and electronics in Fe2Al5

机译:金属间化合物中弱序畴的原理:Fe2Al5中原子堆积和电子的协同效应

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摘要

Many complex intermetallic structures feature a curious juxtaposition of domains with strict 3D periodicity and regions of much weaker order or incommensurability. This article explores the basic principles leading to such arrangements through an investigation of the weakly ordered channels of Fe2Al5. It starts by experimentally confirming the earlier crystallographic model of the high-temperature form, in which nearly continuous columns of electron density corresponding to disordered Al atoms emerge. Then electronic structure calculations on ordered models are used to determine the factors leading to the formation of these columns. These calculations reveal electronic pseudogaps near 16 electrons/Fe atom, an electron concentration close to the Al-rich side of the phase’s homogeneity range. Through a reversed approximation Molecular Orbital (raMO) analysis, these pseudogaps are correlated with the filling of 18-electron configurations on the Fe atoms with the support of isolobal σ Fe–Fe bonds. The resulting preference for 16 electrons/Fe requires a fractional number of Al atoms in the Fe2Al5 unit cell. Density functional theory–chemical pressure (DFT-CP) analysis is then applied to investigate how this nonstoichiometry is accommodated. The CP schemes reveal strong quadrupolar distributions on the Al atoms of the channels, suggestive of soft atomic motions along the undulating electron density observed in the Fourier map that allow the Al positions to shift easily in response to compositional changes. Such a combination of preferred electron counts tied to stoichiometry and continuous paths of CP quadrupoles could provide predictive indicators for the emergence of channels of disordered or incommensurately spaced atoms in intermetallic structures.
机译:许多复杂的金属间结构的特征是具有严格3D周期性且域的阶次或不可通约性较弱的域的并列。本文通过研究Fe2Al5的弱有序通道,探索了导致这种排列的基本原理。首先,通过实验确定高温形式的早期晶体学模型,该模型中出现了近乎连续的,对应于无序Al原子的电子密度列。然后使用有序模型上的电子结构计算来确定导致这些柱形成的因素。这些计算揭示了接近16个电子/ Fe原子的电子拟间隙,电子浓度接近该相均质范围的富Al侧。通过反向近似分子轨道(raMO)分析,这些假间隙与在等原子σFe–Fe键的支持下,Fe原子上18电子构型的填充相关。因此,对16个电子/ Fe的偏爱要求在Fe2Al5晶胞中有少量的Al原子。然后,应用密度泛函理论-化学压力(DFT-CP)分析来研究如何适应这种非化学计量。 CP方案显示出通道Al原子上有很强的四极分布,这表明沿着傅立叶图中观察到的沿着波状电子密度的软原子运动使Al位置易于响应成分变化而移动。与化学计量和CP四极杆的连续路径相关的优选电子计数的这种组合可以为金属间结构中无序或不等间距原子的通道的出现提供预测指标。

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