English

High-order Ho multipoles in HoB2C2 observed with soft resonant x-ray diffraction

Strongly Correlated Electrons 2015-06-03 v1

Abstract

Soft resonant x-ray Bragg diffraction (SRXD) at the Ho M4,5_{4,5} edges has been used to study Ho 4f4f multipoles in the combined magnetic and orbitally ordered phase of HoB2_2C2_2. A full description of the energy dependence for both σ\sigma and π\pi incident x-rays at two different azimuthal angles, as well as the ratio Iσ/IπI_\sigma/I_\pi as a function of azimuthal angle for a selection of energies, allows a determination of the higher order multipole moments of rank 1 (dipole) to 6 (hexacontatetrapole). The Ho 4f multipole moments have been estimated, indicating a dominant hexadecapole (rank 4) order with an almost negligible influence from either the dipole or the octupole magnetic terms. The analysis incorporates both the intra-atomic magnetic and quadrupolar interactions between the 3d core and 4f valence shells as well as the interference of contributions to the scattering that behave differently under time reversal. Comparison of SRXD, neutron diffraction and non resonant x-ray diffraction shows that the magnetic and quadrupolar order parameter are distinct. The (001/2)(0 0 1/2) component of the magnetic order exhibits a Brillouin type increase below the orbital ordering temperature TQ_Q, while the quadrupolar order increases more sharply. We conclude the quadrupolar interaction is strong, but quadrupolar order only occurs when the magnetic order gives rise to a quasi doublet ground state, which results in a lock-in of the orbitals at TQ_Q.

Keywords

Cite

@article{arxiv.1112.0382,
  title  = {High-order Ho multipoles in HoB2C2 observed with soft resonant x-ray diffraction},
  author = {A. J. Princep and A. M. Mulders and E. Schierle and E. Weschke and J. Hester and W. D. Hutchison and Y. Tanaka and N. Terada and Y. Narumi and T. Nakamura},
  journal= {arXiv preprint arXiv:1112.0382},
  year   = {2015}
}

Comments

16 pages, 11 figures

R2 v1 2026-06-21T19:45:06.169Z