论文标题

基于AB-INITIO的模型,用于BCC Fe-Mn合金中的温度依赖性磁化化学相互作用

Ab-initio based models for temperature-dependent magneto-chemical interplay in bcc Fe-Mn alloys

论文作者

Schneider, Anton, Fu, Chu-Chun, Waseda, Osamu, Barreteau, Cyrille, Hickel, Tilmann

论文摘要

已知以身体为中心的立方体(BCC)FE-MN系统表现出来自实验和0 K电子结构计算的复杂而非典型的磁性行为,这是由于MN的半填充3D波段所致。我们提出了这些合金的有效相互作用模型,其中包含原子自旋和化学变量。它们在一组关键密度功能理论(DFT)数据上进行了参数化,其中包含非连续性磁性构型是必不可少的。两种不同的方法,即采用了一种知识驱动和机器学习方法。在原子蒙特卡洛模拟中采用这些模型可以预测Fe-Mn合金的磁性和热力学特性及其耦合作为温度的功能。这包括随着Mn浓度的升高,居里温度的降低,混合焓的温度演化及其与合金磁化的相关性。同样,除了无缺陷的系统之外,我们确定了空位和MN原子之间的结合自由能,这是控制Fe-Mn合金中原子转运的关键参数。

Body-centered cubic (bcc) Fe-Mn systems are known to exhibit a complex and atypical magnetic behaviour from both experiments and 0 K electronic-structure calculations, which is due to the half-filled 3d-band of Mn. We propose effective interaction models for these alloys, which contain both atomic spin and chemical variables. They were parameterized on a set of key density functional theory (DFT) data, with the inclusion of non-collinear magnetic configurations being indispensable. Two distinct approaches, namely a knowledge-driven and a machine-learning approach have been employed for the fitting. Employing these models in atomic Monte Carlo simulations enables the prediction of magnetic and thermodynamic properties of the Fe-Mn alloys, and their coupling, as functions of temperature. This includes the decrease of Curie temperature with increasing Mn concentration, the temperature evolution of the mixing enthalpy and its correlation with the alloy magnetization. Also, going beyond the defect-free systems, we determined the binding free energy between a vacancy and a Mn atom, which is a key parameter controlling the atomic transport in Fe-Mn alloys.

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