Correlation induced electron-hole asymmetry in quasi- two-dimensional iridates.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 28947738.
- Also identified by DOI 10.1038/s41467-017-00818-8 and PMC identifier 5612937.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
The resemblance of crystallographic and magnetic structures of the quasi-two-dimensional iridates Ba<sub>2</sub>IrO<sub>4</sub> and Sr<sub>2</sub>IrO<sub>4</sub> to La<sub>2</sub>CuO<sub>4</sub> points at an analogy to cuprate high-Tc superconductors, even if spin-orbit coupling is very strong in iridates. Here we examine this analogy for the motion of a charge (hole or electron) added to the antiferromagnetic ground state. We show that correlation effects render the hole and electron case in iridates very different. An added electron forms a spin polaron, similar to the cuprates, but the situation of a removed electron is far more complex. Many-body 5d <sup>4</sup> configurations form which can be singlet and triplet states of total angular momentum that strongly affect the hole motion. This not only has ramifications for the interpretation of (inverse-)photoemission experiments but also demonstrates that correlation physics renders electron- and hole-doped iridates fundamentally different.Some iridate compounds such as Sr<sub>2</sub>IrO<sub>4</sub> have electronic and atomic structures similar to quasi-2D copper oxides, raising the prospect of high temperature superconductivity. Here, the authors show that there is significant electron-hole asymmetry in iridates, contrary to expectations from the cuprates.