论文标题
新的无稀土铁磁MNPT5AS的晶体结构,磁性和电子特性
Crystal Structure, Magnetism, and Electronic Properties of New Rare-Earth-Free Ferromagnetic MnPt5As
论文作者
论文摘要
针对性功能材料的设计和合成已成为材料科学家的长期目标。尽管很难为所有类型的材料生成通用的设计策略,但是对于典型的材料家族而言,拥有这样的设计规则仍然很有帮助。在本文中,我们首次合并了几种有关磁性的重要化学和物理因素,例如结构类型,原子距离,自旋轨道耦合,并成功合成了新的无稀土铁磁铁MNPT5AS。可以使用高温颗粒方法来制备MNPT5AS。根据X射线衍射结果,MNPT5As在四方单位细胞中与空间组P4/mmm结晶(Pearson符号TP7)。 MNPT5AS上的磁测量确认在此阶段的铁磁性,居里温度约为301 K,每个公式的饱和力矩为3.5 Ub。通过应用石器标准进行评估还表明,MNPT5AS容易受到铁磁性的影响。使用WIEN2K程序进行局部自旋密度近似的电子结构计算,这表明该阶段的自发磁化主要来自MN和PT原子上D轨道的杂交。理论评估与实验结果一致。此外,自旋轨道耦合效应对MNPT5AS中的磁矩严重影响。 MNPT5AS是这种结构类型中的第一个高性能磁性材料。 MNPT5AS的发现提供了一个平台来研究磁力和结构之间的相互作用。
The design and synthesis of targeted functional materials have been a long-term goal for material scientists. Although a universal design strategy is difficult to generate for all types of materials, however, it is still helpful for a typical family of materials to have such design rules. Herein, we incorporated several significant chemical and physical factors regarding magnetism, such as structure type, atom distance, spin-orbit coupling, and successfully synthesized a new rare-earth-free ferromagnet, MnPt5As, for the first time. MnPt5As can be prepared by using high-temperature pellet methods. According to X-ray diffraction results, MnPt5As crystallizes in a tetragonal unit cell with the space group P4/mmm (Pearson symbol tP7). Magnetic measurements on MnPt5As confirm ferromagnetism in this phase with a Curie temperature of ~301 K and a saturated moment of 3.5 uB per formula. Evaluation by applying the Stoner Criterion also indicates that MnPt5As is susceptible to ferromagnetism. Electronic structure calculations using the WIEN2k program with local spin density approximation imply that the spontaneous magnetization of this phase arises primarily from the hybridization of d orbitals on both Mn and Pt atoms. The theoretical assessments are consistent with the experimental results. Moreover, the spin-orbit coupling effects heavily influence on magnetic moments in MnPt5As. MnPt5As is the first high-performance magnetic material in this structure type. The discovery of MnPt5As offers a platform to study the interplay between magnetism and structure.