English

Ordering of hidden multipoles in spin-orbital entangled 5$d^{1}$ Ta chlorides

Strongly Correlated Electrons 2019-09-11 v2

Abstract

Spin-orbit coupling of as large as a half eV for electrons in 5dd orbitals often gives rise to the formation of spin-orbital entangled objects, characterized by the effective total angular momentum JeffJ_{eff}. Of particular interest are the JeffJ_{eff} = 3/2 states realized in 5d1d^{1} transition metal ions surrounded by an anion octahedron. The pure JeffJ_{eff} = 3/2 quartet does not have any magnetic dipolar moment (<MM> = 0) but hosts hidden pseudo-dipolar moments accompanied by charge quadrupoles and magnetic octupoles. Cs2_2TaCl6_6 and Rb2_2TaCl6_6 are correlated insulators with 5d1d^{1} Ta4+^{4+} ions in a regular Cl octahedron. Here we demonstrate that these Ta chlorides have a substantially suppressed effective magnetic dipolar moment of ~ 0.2 μB{\mu}_B. Two phase transitions are observed at low temperatures that are not pronounced in the magnetization but accompanied with large electronic entropy of RRln4. We ascribe the two transitions to the ordering of hidden multipoles.

Keywords

Cite

@article{arxiv.1807.08311,
  title  = {Ordering of hidden multipoles in spin-orbital entangled 5$d^{1}$ Ta chlorides},
  author = {Hajime Ishikawa and Tomohiro Takayama and Reinhard K. Kremer and Jürgen Nuss and Robert Dinnebier and Kentaro Kitagawa and Kenji Ishii and Hidenori Takagi},
  journal= {arXiv preprint arXiv:1807.08311},
  year   = {2019}
}