论文标题
在半金属的FEMNVAL中共存结构障碍和可靠的自旋偏振
Coexisting structural disorder and robust spin-polarization in half-metallic FeMnVAl
论文作者
论文摘要
半金属的铁磁铁(HMF)是Spintronics领域中最有前途的材料之一,因为它们的独特带结构由一个具有金属特性的旋转子带以及另一个具有半导体样行为的子频段组成。在这项工作中,我们报告了一种新型的第四级小螺旋合金FEMNVAL的合成,并研究了结构,磁性,运输和电子性质,并辅以含有第一原理计算。在不同可能的结构有序布置中,理论能量最小化可以确定最佳结构。相应的自旋偏振带结构计算表明存在半金属铁磁基态。对X射线衍射数据,Mössbauer和核磁共振光谱进行了详细而仔细的研究,这表明在系统的稳定有序结构中,Fe和Mn原子之间存在位点序列。磁化率测量清楚地在$ \ sim $ 213 k的低于$ \ sim $ 213 k的低于$ {^{57}} $feMössbauer频谱测量值的$ \ sim $ \ sim下清楚地建立了类似铁磁的过渡。令人惊讶的是,密度功能理论的计算表明,即使非磁性Fe和携带MN携带的MN位点不可分割地缠绕,即使在非磁性Fe和矩矩中,也从MN-FE结构障碍中几乎免疫(92.4 \%\%\%\ rightArrow} $ 90.4 \%)。因此,在包含结构性疾病的研究的FEMNVAL化合物中,自旋极化和半金属性的鲁棒性非常有趣,并且可以提供一个新的方向,以研究和了解疾病在这些类别的材料中的自旋极化在这些材料中的确切作用。
Half-metallic ferromagnets (HMF) are on one of the most promising materials in the field of spintronics due to their unique band structure consisting of one spin sub-band having metallic characteristics along with another sub-band with semiconductor-like behavior. In this work, we report the synthesis of a novel quaternary Heusler alloy FeMnVAl and have studied the structural, magnetic, transport, and electronic properties complemented with first-principles calculations. Among different possible structurally ordered arrangements, the optimal structure is identified by theoretical energy minimization. The corresponding spin-polarized band structure calculations indicates the presence of a half-metallic ferromagnetic ground state. A detailed and careful investigation of the x-ray diffraction data, Mössbauer and nuclear magnetic resonance spectra suggest the presence of site-disorder between the Fe and Mn atoms in the stable ordered structure of the system. The magnetic susceptibility measurement clearly establishes a ferromagnetic-like transition below $\sim$213 K. The ${^{57}}$Fe Mössbauer spectrometry measurements suggest only the Mn-spins could be responsible for the magnetic order, which is consistent with our theoretical calculation. Surprisingly, the density-functional-theory calculations reveal that the spin-polarization value is almost immunized (92.4\% ${\rightarrow}$ 90.4\%) from the Mn-Fe structural disorder, even when nonmagnetic Fe and moment carrying Mn sites are entangled inseparably. Robustness of spin polarization and half metallicity in the studied FeMnVAl compound comprising structural disorder is thus quite interesting and could provide a new direction to investigate and understand the exact role of disorders on spin polarization in these class of materials, over the available knowledge.