English

Tracing crystal-field splittings in the rare earth-based intermetallic CeIrIn$_5$

Strongly Correlated Electrons 2018-04-04 v1 Materials Science Superconductivity

Abstract

Crystal electric field states in rare earth intermetallics show an intricate entanglement with the many-body physics that occurs in these systems and that is known to lead to a plethora of electronic phases. Here, we attempt to trace different contributions to the crystal electric field (CEF) splittings in CeIrIn5_5, a heavy-fermion compound and member of the CeMMIn5_5 (MM= Co, Rh, Ir) family. To this end, we utilize high-resolution resonant angle-resolved photoemission spectroscopy (ARPES) and present a spectroscopic study of the electronic structure of this unconventional superconductor over a wide temperature range. As a result, we show how ARPES can be used in combination with thermodynamic measurements or neutron scattering to disentangle different contributions to the CEF splitting in rare earth intermetallics. We also find that the hybridization is stronger in CeIrIn5_5 than CeCoIn5_5 and the effects of the hybridization on the Fermi volume increase is much smaller than predicted. By providing the first experimental evidence for 4f7/214f_{7/2}^{1} splittings which, in CeIrIn5_5, split the octet into four doublets, we clearly demonstrate the many-body origin of the so-called 4f7/214f_{7/2}^{1} state.

Keywords

Cite

@article{arxiv.1802.04529,
  title  = {Tracing crystal-field splittings in the rare earth-based intermetallic CeIrIn$_5$},
  author = {Q. Y. Chen and C. H. P. Wen and Q. Yao and K. Huang and Z. F. Ding and L. Shu and X. H. Niu and Y. B. Huang and G. B. Zhang and Y. Zhang and X. C. Lai and S. Kirchner and D. L. Feng},
  journal= {arXiv preprint arXiv:1802.04529},
  year   = {2018}
}