论文标题

电子结构,磁性特性,旋转方向和掺杂效应,$ _3 $ si $ _2 $ te $ _6 $

Electronic structure, magnetic properties, spin orientation, and doping effect in Mn$_3$Si$_2$Te$_6$

论文作者

Zhang, Yang, Lin, Ling-Fang, Moreo, Adriana, Dagotto, Elbio

论文摘要

分层材料Mn $ _3 $ si $ _2 $ te $ _6 $,带有交替的堆叠蜂窝和三角形层,由于其丰富的物理特性,引起了极大的关注。在这里,使用密度功能理论和经典的蒙特卡洛(MC)方法,我们系统地研究了该系统。在费米级别附近,各州主要由$ 5p $ $ 3D $ 3D $轨道杂交的$ 5p $轨道贡献,类似于收费转移系统。此外,当沿$ AB $平面或平面外向时,铁磁性(FIM)基态的自旋方向显示出不同的导电行为:绝缘与金属状态。 FIM [110]绝缘和FIM [001]金属相之间的能量差很小($ \ sim 0.71 $ MEV/mn)。将旋转方向的角度$θ$从平面内部转换为平面外向,该系统的带隙逐渐减小,从而导致绝缘体 - 金属转变,从而提高了与巨大的角度磁势(MR)效应有关的增强的电导率。此外,我们还使用使用MC方法研究的经典$ xy $旋转模型构建了磁相图。获得了三个磁相,包括抗铁磁阶,非共线自旋模式和FIM顺序。此外,我们还调查了Mn $ _3 $ si $ _2 $ te $ _6 $ System:FIM状态在磁性候选案例中的能量最低的能量。在SE掺杂的情况下,磁各向异性能量(MAE)会减少,因为随着掺杂$ x $的增加,Mn轨道矩会减小。由于SE的旋转轨道耦合效应较小,因此在SE掺杂的情况下,由旋转方向引起的绝缘剂 - 金属转变消失,从而导致FIM [001]相的绝缘相。这导致巨大的角度MR降低。

The layered material Mn$_3$Si$_2$Te$_6$, with alternating stacking honeycomb and triangular layers, is attracting considerable attention due to its rich physical properties. Here, using density functional theory and classical Monte Carlo (MC) methods, we systematically study this system. Near the Fermi level, the states are mainly contributed by Te $5p$ orbitals hybridized with Mn $3d$ orbitals, resembling a charge transfer system. Furthermore, the spin orientations of the ferrimagnetic (FiM) ground state display different conductive behaviors when along the $ab$ plane or out-of-plane directions: insulating vs. metallic states. The energy difference between the FiM [110] insulating and FiM [001] metallic phases is very small($ \sim 0.71$ meV/Mn). Changing the angle $θ$ of spin orientation from in-plane to out-of-plane directions, the band gaps of this system are gradually reduced, leading to an insulator-metal transition, resulting in an enhanced electrical conductivity, related to the colossal angular magnetoresistance (MR) effect. In addition, we also constructed the magnetic phase diagram using the classical $XY$ spin model studied with the MC method. Three magnetic phases were obtained including antiferromagnetic order, noncollinear spin patterns, and FiM order. Moreover, we also investigated the Se- and Ge- doping into the Mn$_3$Si$_2$Te$_6$ system: the FiM state has the lowest energy among the magnetic candidates for both Se- or Ge- doped cases. The magnetic anisotropy energy (MAE) decreases in the Se-doped case because the Mn orbital moment is reduced as the doping $x$ increases. Due to the small spin-orbital coupling effect of Se, the insulator-metal transition caused by the spin orientation disappears in the Se-doped case, resulting in an insulating phase in the FiM [001] phase. This causes a reduced colossal angular MR.

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