Correlation Effects and Hidden Spin-Orbit Entangled Electronic Order in Parent and Electron-Doped Iridates Sr<sub>2</sub>IrO<sub>4</sub>
ORAL
Abstract
Recent experiments discovered hidden order in the parent and electron-doped iridates Sr2IrO4, some with striking analogies to the cuprates, including Fermi surface pockets, Fermi arcs, and pseudogap. Here, we study the correlation and disorder effects in a five-orbital model derived from the band theory. We find that the experimental observations are consistent with a d-wave spin-orbit density wave order that breaks the symmetry of a joint twofold spin-orbital rotation followed by a lattice translation. The associated staggered circulating Jeff = 1/2 spin current can be probed by advanced techniques of spin-current detection in spintronics. This electronic order can emerge spontaneously from the intersite Coulomb interactions between the spatially extended iridium 5d orbitals, turning the metallic state into an electron-doped quasi-2D Dirac semimetal with important implications on the possible superconducting state suggested by recent experiments.
*This work is supported by the U.S. Department of Energy, Basic Energy Sciences Grant No. DE-FG02-99ER45747 (Z.W. and K. J.) and the Key Research Program of Frontier Sciences, CAS, Grant No. QYZDB-SSW-SYS012 (S. Z.).
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Presenters
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Sen Zhou
- Institute of Theoretical Physics, Chinese Academy of Sciences