论文标题

磁性和乐队拓扑的相互作用欧盟$ _ {1-x} $ ca $ _x $ _x $ mg $ _2 $ bi $ _2 $(x = 0,0.5)

Interplay of magnetism and band topology in Eu$_{1-x}$Ca$_x$Mg$_2$Bi$_2$ (x=0, 0.5) from first principles study

论文作者

Choudhury, Amarjyoti, Mohanta, N., Maitra, T.

论文摘要

最近发现的逆转对称性破坏磁性Weyl半法,在量子拓扑材料领域创造了巨大的活动。在这项工作中,我们在一种此类材料中系统地研究了基态磁性,电子结构以及磁性秩序和频带拓扑之间的相互作用,EUMG $ _2 $ _2 $ _2 $ $ _2 $(EMB)及其CA掺杂变体,使用第一原理方法在密度功能理论框架内(DFT)。详细的研究揭示了该单一材料中不同拓扑阶段的存在,这些拓扑阶段可以通过外部探针(例如磁场或化学替代)调节。我们的DFT计算包括GGA+U+内的库仑相关性(U)和自旋轨道(SO)相互作用,因此近似值证实,EMB的磁接地状态是A型抗铁磁磁性(A-AFM),其沿着沿晶体学$ A $ A $ A $或$ B $方向对齐的EU磁矩。尽管EMB的基态为A-AFM,但铁磁(FM)状态在能量上非常接近。我们观察到一对连接价值和传导带的单对沿FERMI级别(FL)沿$γ$ -A的方向在FM的FMI级别(FL),在EUMG $ _2 $ _2 $ _2 $ _2 $ _2 $与沿晶体学$ C $方向对齐的欧盟时刻。在欧盟站点的掺杂50 \%CA时,我们观察到单对的Weyl点更靠近FL,这是非常可取的。此外,我们观察到,与母体化合物相比,对化合物中的Weyl点之间的分离降低了,该化合物对异常霍尔电导率(AHC)有直接影响。我们对AHC的第一原理计算在这些Weyl点处恰好显示高峰值,并且当我们用CA将系统涂抹时,峰高降低。因此,CA掺杂可以是该系统中调整AHC的良好外部手柄。

Recent discovery of the time reversal symmetry breaking magnetic Weyl semimetals has created a huge surge of activities in the field of quantum topological materials. In this work, we have studied systematically the ground state magnetic order, electronic structure and the interplay between the magnetic order and band topology in one such materials, EuMg$_2$Bi$_2$ (EMB) and its Ca doped variant using first principles method within the framework of density functional theory (DFT). The detailed investigation unravels the existence of different topological phases in this single material which can be tuned by an external probe such as magnetic field or chemical substitution. Our DFT calculations including Coulomb correlation (U) and spin-orbit (SO) interaction within GGA+U+SO approximation confirms that the magnetic ground state of EMB is A-type Antiferromagnetic (A-AFM) with Eu magnetic moments aligned along the crystallographic $a$ or $b$ direction. Although the ground state of EMB is A-AFM, the Ferromagnetic (FM) state lies very close in energy. We observe a single pair of Weyl points connecting valence and conduction band very close to the Fermi level (FL) along $Γ$-A direction in the FM state of EuMg$_2$Bi$_2$ with Eu moments aligned along crystallographic $c$ direction. On doping 50\% Ca at Eu sites, we observe single pair of Weyl points moving closer to the FL which is highly desirable for application purposes. Further we observe that the separation between the Weyl points in the pair decreases in doped compound compared to that in the parent compound which has direct consequence on anomalous Hall conductivity (AHC). Our first principles calculation of AHC shows high peak values exactly at these Weyl points and the peak height decreases when we dope the system with Ca. Therefore, Ca doping can be a good external handle to tune AHC in this system.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源