论文标题
MNBI2TE4-家庭材料的Van der Waals异质结构中的可调层中磁力和带拓扑
Tunable interlayer magnetism and band topology in van der Waals heterostructures of MnBi2Te4-family materials
论文作者
论文摘要
操纵范德华磁性材料和异质结构中的层间磁耦合是为各种电子应用定制其磁性和电子性能的关键,以及在凝聚态物理学中的基本研究。通过利用MNBI2TE4-家庭化合物及其异质结构作为模型系统,我们通过使用第一原则计算系统地研究了层间磁耦合对组成元件的符号和强度的依赖性。发现耦合是由相邻隔层磁性磁原子之间的P轨道链介导的远距离交流相互作用。层间交换始终是纯化合物中的抗磁磁性,但可以在异质结构的某些组合中调整为铁磁性,这是D轨道职业所决定的。如果将内侧P电子定位并且磁原子的D带接近费米水平,则可以实现强层间磁耦合。关于层间耦合机制的知识使我们能够设计MNBI2TE4-家庭材料的磁性和拓扑特性,以及许多其他绝缘范德华的磁性磁性材料和异质结构。
Manipulating the interlayer magnetic coupling in van der Waals magnetic materials and heterostructures is the key to tailoring their magnetic and electronic properties for various electronic applications and fundamental studies in condensed matter physics. By utilizing the MnBi2Te4-family compounds and their heterostructures as a model system, we systematically studied the dependence of the sign and strength of interlayer magnetic coupling on constituent elements by using first-principles calculations. It was found that the coupling is a long-range superexchange interaction mediated by the chains of p orbitals between the magnetic atoms of neighboring septuple-layers. The interlayer exchange is always antiferromagnetic in the pure compounds, but can be tuned to ferromagnetic in some combinations of heterostructures, dictated by d orbital occupations. Strong interlayer magnetic coupling can be realized if the medial p electrons are delocalized and the d bands of magnetic atoms are near the Fermi level. The knowledge on the interlayer coupling mechanism enables us to engineer magnetic and topological properties of MnBi2Te4-family materials as well as many other insulating van der Waals magnetic materials and heterostructures.