论文标题
工程磁性绝缘体的现场混合
Site Mixing for Engineering Magnetic Topological Insulators
论文作者
论文摘要
Van der Waals化合物MNBI $ _2 $ TE $ _4 $,是第一个固有的磁性拓扑拓扑剂,为探索异国情调的量子现象(例如轴突绝缘子状态和量子异常霍尔效应)提供了材料平台。然而,内在的结构缺陷导致了庞大的电导率,磁缺陷的作用仍然未知。具有较高浓度的相同类型的磁性缺陷,ISSOMSTRUCTARARTAR COMPOUND MNSB $ _2 $ TE $ _4 $是对磁性,拓扑和晶格缺陷之间连接的系统研究的更好模型系统。在这项工作中,在MNSB $ _2 $ te $ _4 $中研究了反塞缺陷对磁性和电子结构的影响。 MN-SB位点混合会导致复杂的磁性结构,并调谐抗铁磁和铁磁之间的层间磁耦合。 MNSB $ _2 $ TE $ _4 $ CRYSTALS的详细非构思计量和现场混合取决于增长参数,这可能导致$ \ $ \ $ \ $ 40 \%的SB占用的MN站点和大约$ 15 \ $ 15 \%的SB站点,而MN的MN占Mn的MN。单晶中子衍射和电子显微镜研究表明,抗弥漫缺损的几乎随机分布。频带结构计算表明,MN-SB位点混合有利于FM层间耦合,与实验观察一致,但对非平凡拓扑所需的频带反转有害。我们的结果表明,MN离子坐在MNBI $ _2 $ te $ _4 $的MN离子的远程磁性顺序。在所有分层的异质结构中,应考虑现场混合的效果,这些异质结构包括交替的磁性和拓扑层,包括整个MNTE家族(Bi $ _2 $ _2 $ te $ _3 $)$ _ N $,其SB类似物和其实心解决方案。
The van der Waals compound, MnBi$_2$Te$_4$, is the first intrinsic magnetic topological insulator, providing a materials platform for exploring exotic quantum phenomena such as the axion insulator state and the quantum anomalous Hall effect. However, intrinsic structural imperfections lead to bulk conductivity, and the roles of magnetic defects are still unknown. With higher concentrations of same types of magnetic defects, the isostructural compound MnSb$_2$Te$_4$ is a better model system for a systematic investigation of the connections among magnetic, topology and lattice defects. In this work, the impact of antisite defects on the magnetism and electronic structure is studied in MnSb$_2$Te$_4$. Mn-Sb site mixing leads to complex magnetic structures and tunes the interlayer magnetic coupling between antiferromagnetic and ferromagnetic. The detailed nonstoichiometry and site-mixing of MnSb$_2$Te$_4$ crystals depend on the growth parameters, which can lead to $\approx$40\% of Mn sites occupied by Sb and $\approx$15\% of Sb sites by Mn in as-grown crystals. Single crystal neutron diffraction and electron microscopy studies show nearly random distribution of the antisite defects. Band structure calculations suggest that the Mn-Sb site-mixing favors a FM interlayer coupling, consistent with experimental observation, but is detrimental to the band inversion required for a nontrivial topology. Our results suggest a long range magnetic order of Mn ions sitting on Bi sites in MnBi$_2$Te$_4$. The effects of site mixing should be considered in all layered heterostructures that consist of alternating magnetic and topological layers, including the entire family of MnTe(Bi$_2$Te$_3$)$_n$, its Sb analogs and their solid solution.