Spin-orbit effects in pentavalent iridates: models and materials.

J Phys Condens Matter

School of Physical Sciences, Indian Association for the Cultivation of Science, Jadavpur, Kolkata 700 032, India.

Published: August 2021

Spin-orbit effects in heavy 5transition 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 5orbitals 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 insystems are expected to be confined to the= 0 singlet state without any resultant moment or magnetic response. However, it has been recently predicted that, magnetism insystems may occur via magnetic condensation of excitations across spin-orbit-coupled states. In reality, the magnetism in Irsystems are often quite debatable both from theoretical as well as experimental point of view. Here we provide a comprehensive overview of the spin-orbit coupledmodel systems and its implications in the studied pentavalent iridates. In particular, we review here the current experimental and theoretical understanding of the double perovskite (YIrO,= Sr, Ba,= Y, Sc, Gd), 6H-perovskite (BaIrO,= Zn, Mg, Sr, Ca), post-perovskite (NaIrO), and hexagonal (SrIrO) iridates, along with a number of open questions that require future investigation.

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Source
http://dx.doi.org/10.1088/1361-648X/ac1aedDOI Listing

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