论文标题
对伪hexagonal cerh $ _3 $ si $ _2 $ si $ _2 $ si $ _2 $ si $ _2 $ si $ _2 $ si $ _2 $调查
Investigation of metamagnetism and crystal-field splitting in pseudo-hexagonal CeRh$_3$Si$_2$
论文作者
论文摘要
CERH $ _3 $ SI $ _2 $据报道显示出低于5〜K的元磁过渡,一种巨大的晶体场分裂,以及来自单晶磁化和热容量测量的各向异性磁性特性。在这里,我们报告了磁性结构和晶体场激发的中子和X射线散射研究的结果,以进一步了解该化合物的磁性。当考虑质量轴的晶体学$ A方向时,无弹性中子散射(INS)和共振非弹性X射线散射(RIX)揭示了CE的$ J_z $ \,= \,1/2的地面标准。此外,我们发现$ j $ \,= \,5/2倍数的78 \,MEV的总分裂。零场中的中子衍射研究表明,从顺磁状态冷却后,系统首先以$ t _ {\ text {n} _1} = 4.7 $ \,k在纵向旋转密度波动中,沿着$ b $ axis(I.E. $ \ textbf {k} =(0,0.43,0 $)。下面的低温过渡$ t _ {\ text {n} _2} = 4.48 $ \,k,传播矢量锁到相应值$ \ textbf {k} =(0,0.5,0)$,带有所谓的锁定锁定过渡。我们在应用磁场中的中子衍射研究$ h \ \ parallel b $轴显示了相应的传播矢量的变化,并且在$ h = 3 $ \,koe时的铁磁成分的开发发生了变化,然后是一系列过渡,然后在完全现场诱导的铁磁阶段到达$ h = 7 $ \ $ \,kee。这解释了先前报道的磁化测量测量的步骤的性质。对于$ h \ parallel $ [0 1 1]晶体方向也观察到非常相似的行为。
CeRh$_3$Si$_2$ has been reported to exhibit metamagnetic transitions below 5~K, a giant crystal field splitting, and anisotropic magnetic properties from single crystal magnetization and heat capacity measurements. Here we report results of neutron and x-ray scattering studies of the magnetic structure and crystal-field excitations to further understand the magnetism of this compound. Inelastic neutron scattering (INS) and resonant inelastic x-ray scattering (RIXS) reveal a $J_z$\,=\,1/2 groundstate for Ce when considering the crystallographic $a$ direction as quantization axis, thus explaining the anisotropy of the static susceptibility. Furthermore, we find a total splitting of 78\,meV for the $J$\,=\,5/2 multiplet. The neutron diffraction study in zero field reveals that on cooling from the paramagnetic state, the system first orders at $T_{\text{N}_1}=4.7$\,K in a longitudinal spin density wave with ordered Ce moments along the $b$-axis (i.e. the [0 1 0] crystal direction) and an incommensurate propagation vector $\textbf{k}=(0,0.43,0$). Below the lower-temperature transition $T_{\text{N}_2}=4.48$\,K, the propagation vector locks to the commensurate value $\textbf{k}=(0,0.5,0)$, with a so-called lock-in transition. Our neutron diffraction study in applied magnetic field $H\parallel b$-axis shows a change in the commensurate propagation vector and development of a ferromagnetic component at $H=3$\,kOe, followed by a series of transitions before the fully field-induced ferromagnetic phase is reached at $H = 7$\,kOe. This explains the nature of the steps previously reported in field-dependent magnetization measurements. A very similar behaviour is also observed for the $H\parallel$ [0 1 1] crystal direction.