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Site preference and tetragonal distortion in palladium-rich Heusler alloys

机译:富钯Heusler合金的位点偏爱和四方畸变

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In this work, two kinds of competition between different Heusler structure types are considered, one is the competition between XA and L21 structures based on the cubic system of full-Heusler alloys, Pd2YZ (Y = Co, Fe, Mn; Z = B, Al, Ga, In, Tl, Si, Ge, Sn, Pb, P, As, Sb). Most alloys prefer the L21 structure; that is, Pd atoms tend to occupy the a (0, 0, 0) and c (0.5, 0.5, 0.5) Wyckoff sites, the Y atom is generally located at site b (0.25, 0.25, 0.25), and the main group element Z has a preference for site d (0.75, 0.75, 0.75), meeting the well known site-preference rule. The difference between these two cubic structures in terms of their magnetic and electronic properties is illustrated further by their phonon dispersion and density-of-states curves. The second type of competition that was subjected to systematic study was the competitive mechanism between the L21 cubic system and its L10 tetragonal system. A series of potential tetragonal distortions in cubic full-Heusler alloys (Pd2YZ) have been predicted in this work. The valley-and-peak structure at, or in the vicinity of, the Fermi level in both spin channels is mainly attributed to the tetragonal ground states according to the density-of-states analysis. ΔEM is defined as the difference between the most stable energy values of the cubic and tetragonal states; the larger the value, the easier the occurrence of tetragonal distortion, and the corresponding tetragonal structure is stable. Compared with the ΔEM values of classic Mn2-based tetragonal Heusler alloys, the ΔEM values of most Pd2CoZ alloys in this study indicate that they can overcome the energy barriers between cubic and tetragonal states, and possess possible tetragonal transformations. The uniform strain has also been taken into consideration to further investigate the tetragonal distortion of these alloys in detail. This work aims to provide guidance for researchers to further explore and study new magnetic functional tetragonal materials among the full-Heusler alloys.
机译:在这项工作中,考虑了两种不同Heusler结构类型之间的竞争,一种是基于全Heusler合金Pd2YZ(Y = Co,Fe,Mn,Z = B, Al,Ga,In,Tl,Si,Ge,Sn,Pb,P,As,Sb)。大多数合金更喜欢L21结构。也就是说,Pd原子倾向于占据a(0,0,0)和c(0.5,0.5,0.5)Wyckoff位,Y原子通常位于b位(0.25,0.25,0.25),并且主要基团元素Z具有网站d的首选项(0.75、0.75、0.75),符合众所周知的网站首选项规则。这两个立方结构之间在磁性和电子性质方面的差异进一步通过其声子色散和状态密度曲线加以说明。进行系统研究的第二类竞争是L21立方系统与其L10四方系统之间的竞争机制。在这项工作中,已经预测了立方全Heusler合金(Pd2YZ)中的一系列潜在的四方畸变。根据状态密度分析,两个自旋通道中费米能级或附近的谷峰结构主要归因于四方基态。 ΔEM定义为立方态和四方态的最稳定能量值之差;值越大,越容易发生四方畸变,并且相应的四方结构稳定。与经典的Mn2基四方Heusler合金的ΔEM值相比,本研究中大多数Pd2CoZ合金的ΔEM值表明它们可以克服立方和四方态之间的能垒,并具有可能的四方相变。还考虑了均匀应变,以进一步详细研究这些合金的四方变形。这项工作旨在为研究人员提供指导,以进一步探索和研究全Heusler合金中的新型磁性功能四方材料。

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