Spin-orbit effects in pentavalent Iridates: Models and materials
Sayantika Bhowal, Indra Dasgupta

TL;DR
This paper reviews the current understanding of spin-orbit effects in pentavalent iridates, focusing on $d^4$ systems, their magnetic properties, and the theoretical and experimental debates surrounding them.
Contribution
It provides a comprehensive overview of the models and experimental findings related to spin-orbit coupled $d^4$ iridates, highlighting open questions and future research directions.
Findings
Magnetism in $d^4$ iridates may arise from excitations across spin-orbit states.
Experimental and theoretical debates exist regarding the magnetic properties of Ir$^{5+}$ systems.
Various crystal structures like double perovskites and post-perovskites are discussed in relation to spin-orbit effects.
Abstract
Spin-orbit effects in heavy 5 transition metal oxides, in particular, iridates, have received enormous current interest due to the prediction as well as the realization of a plethora of exotic and unconventional magnetic properties. While a bulk of these works are based on tetravalent iridates (), where the counter-intuitive insulating state of the rather extended 5 orbitals are explained by invoking strong spin-orbit coupling, the recent quest in iridate research has shifted to the other valencies of Ir, of which pentavalent iridates constitute a notable representative. In contrast to the tetravalent iridates, spin-orbit entangled electrons in systems are expected to be confined to the singlet state without any resultant moment or magnetic response. However, it has been recently predicted that, magnetism in systems may occur via magnetic condensation of…
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