English

Spin-Orbital Entangled Liquid State in the Copper Oxide Ba$_3$CuSb$_2$O$_9$

Strongly Correlated Electrons 2018-10-11 v1

Abstract

Structure with orbital degeneracy is unstable toward spontaneous distortion. Such orbital correlation usually has a much higher energy scale than spins, and therefore, magnetic transition takes place at a much lower temperature, almost independently from orbital ordering. However, when the energy scales of orbitals and spins meet, there is a possibility of spin-orbital entanglement that would stabilize novel ground state such as spin-orbital liquid and random singlet state. Here we review on such a novel spin-orbital magnetism found in the hexagonal perovskite oxide Ba3_3CuSb2_2O9_9, which hosts a self-organized honeycomblike short-range order of a strong Jahn-Teller ion Cu2+^{2+}. Comprehensive structural and magnetic measurements have revealed that the system has neither magnetic nor Jahn-Teller transition down to the lowest temperatures, and Cu spins and orbitals retain the hexagonal symmetry and paramagnetic state. Various macroscopic and microscopic measurements all indicate that spins and orbitals remain fluctuating down to low temperatures without freezing, forming a spin-orbital entangled liquid state.

Keywords

Cite

@article{arxiv.1810.04346,
  title  = {Spin-Orbital Entangled Liquid State in the Copper Oxide Ba$_3$CuSb$_2$O$_9$},
  author = {Huiyuan Man and Mario Halim and Hiroshi Sawa and Masayuki Hagiwara and Yusuke Wakabayashi and Satoru Nakatsuji},
  journal= {arXiv preprint arXiv:1810.04346},
  year   = {2018}
}

Comments

33 pages, 17 figures, 1 table, to appear in Journal of Physics: Condensed Matter (topical review)