Investigation of metamagnetism and crystal-field splitting in pseudo-hexagonal CeRhSi
arXiv:2202.13195 · doi:10.1103/PhysRevB.105.125119
Abstract
CeRhSi 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 \,=\,1/2 groundstate for Ce when considering the crystallographic direction as quantization axis, thus explaining the anisotropy of the static susceptibility. Furthermore, we find a total splitting of 78\,meV for the \,=\,5/2 multiplet. The neutron diffraction study in zero field reveals that on cooling from the paramagnetic state, the system first orders at \,K in a longitudinal spin density wave with ordered Ce moments along the -axis (i.e. the [0 1 0] crystal direction) and an incommensurate propagation vector ). Below the lower-temperature transition \,K, the propagation vector locks to the commensurate value , with a so-called lock-in transition. Our neutron diffraction study in applied magnetic field -axis shows a change in the commensurate propagation vector and development of a ferromagnetic component at \,kOe, followed by a series of transitions before the fully field-induced ferromagnetic phase is reached at \,kOe. This explains the nature of the steps previously reported in field-dependent magnetization measurements. A very similar behaviour is also observed for the [0 1 1] crystal direction.
26 pages, 16 figures