Recent progress on correlated electron systems with strong spin-orbit coupling
Robert Schaffer, Eric Kin-Ho Lee, Bohm-Jung Yang, Yong Baek Kim

TL;DR
This review summarizes recent theoretical and experimental advances in understanding correlated electron systems with strong spin-orbit coupling, focusing on iridates and their novel quantum states, topological properties, and magnetic behaviors.
Contribution
It provides a comprehensive overview of progress in strongly spin-orbit coupled correlated materials, highlighting new phases, topological states, and experimental signatures in iridates.
Findings
Quantum criticality in pyrochlore iridates
Surface and boundary states in topological phases
Potential quantum spin liquid phases in honeycomb iridates
Abstract
Emergence of novel quantum ground states in correlated electron systems with strong spin-orbit coupling has been a recent subject of intensive studies. While it has been realized that spin-orbit coupling can provide non-trivial band topology in weakly interacting electron systems, as in topological insulators and semi-metals, the role of electron-electron interaction in strongly spin-orbit coupled systems has not been fully understood. The availability of new materials with significant electron correlation and strong spin-orbit coupling now makes such investigations possible. Many of these materials contain 5d or 4d transition metal elements; the prominent examples are iridium oxides or iridates. In this review, we succinctly discuss recent theoretical and experimental progress on this subject. After providing a brief overview, we focus on pyrochlore iridates and three-dimensional…
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