论文标题
磁性结构,自旋流动过渡和欧盟和Mn磁性的偶联
Magnetic structures, spin-flop transition and coupling of Eu and Mn magnetism in the Dirac semimetal EuMnBi$_2$
论文作者
论文摘要
我们在这里报告了对欧盟和MN磁性转子的AFM结构的全面研究,以及该化合物中欧盟和MN磁性之间的相互作用,通过使用偏振和非极化单晶中子衍射。磁敏感性,特定的热容量测量以及磁衍射的温度依赖性表明,欧盟和MN矩的AFM排序温度分别为22和337 K。欧盟和MN离子的磁矩沿晶体学$ c $轴定向,并且相应的磁性传播向量为$ \ textbf {k} _ {eu} =(0,0,0,1)$和$ \ textbf {k} _ {k} _ {mn} _ {mn} =(mn} =(0,0,0,0,0,0,0)$。通过适当的中子吸收校正,欧盟和MN离子的有序矩分别为3 k,分别为7.7(1)$μ_b$和4.1(1)$μ_b$。此外,确认沿$ c $轴施加的磁场中欧盟矩的自旋流动(SF)相变,可以在B $ _C $ $ $ \ sim $ 5.3 t的关键场上进行。欧盟磁矩方向的演变是SF阶段中应用磁场的函数的演变。在SF相变的开始和欧盟矩的AFM顺序分别观察到磁反射($ \ pm1 $,0,1)在磁反射($ \ pm1 $,0,1)中的清晰扭结。这明确表明欧盟和MN磁性之间存在强耦合。两种磁性转子之间的相互作用可以通过在这类磁性拓扑半学的应用场上通过更改磁性结构来调整新的可能性,从而使新的可能性调节迪拉克·费米子。
We report here a comprehensive study of the AFM structures of the Eu and Mn magnetic sublattices as well as the interplay between Eu and Mn magnetism in this compound by using both polarized and non-polarized single-crystal neutron diffraction. Magnetic susceptibility, specific heat capacity measurements and the temperature dependence of magnetic diffractions suggest that the AFM ordering temperature of the Eu and Mn moments is at 22 and 337 K, respectively. The magnetic moments of both Eu and Mn ions are oriented along the crystallographic $c$ axis, and the respective magnetic propagation vector is $\textbf{k}_{Eu} = (0,0,1)$ and $\textbf{k}_{Mn}=(0,0,0)$. With proper neutron absorption correction, the ordered moments are refined at 3 K as 7.7(1) $μ_B$ and 4.1(1) $μ_B$ for the Eu and Mn ions, respectively. In addition, a spin-flop (SF) phase transition of the Eu moments in an applied magnetic field along the $c$ axis was confirmed to take place at a critical field of B$_c$ $\sim$ 5.3 T. The evolution of the Eu magnetic moment direction as a function of the applied magnetic field in the SF phase was also determined. Clear kinks in both field and temperature dependence of the magnetic reflections ($\pm1$, 0, 1) of Mn were observed at the onset of the SF phase transition and the AFM order of the Eu moments, respectively. This unambiguously indicates the existence of a strong coupling between Eu and Mn magnetism. The interplay between two magnetic sublattices could bring new possibilities to tune Dirac fermions via changing magnetic structures by applied fields in this class of magnetic topological semimetals.