January 2017

Journal

Spin-orbit-driven magnetic structure and excitation in the 5d pyrochlore Cd2Os2O7

By:
Calder, Stuart A; Vale, James; Bogdanov, Nikolay; Liu, Xeurong; Donnerer, Christian; Upton, Mary; Casa, Diego; Ayman, Said; Zhao, Zhiying ; Yan, J.-Q.; Mandrus, David ; Satoshi, Nishimoto; Van den Brink, Jeroen; McMorrow, D. F.; Hill, John; Christianson, Andrew D
Journal Name:
Nature Communications
Page Number:
11651-1
Volume:
7
Issue Number:
11651
Publication Date:
January 2017
View DOI Listing:
https://doi.org/10.1038/ncomms11651

Abstract

Much consideration has been given to the role of spin-orbit coupling (SOC) in 5d oxides, particularly on the formation of novel electronic states and manifested metal-insulator transitions (MITs). SOC plays a dominant role in 5d5 iridates (Ir4+), undergoing MITs both concurrent (pyrochlores) and separated (perovskites) from the onset of magnetic order. However, the role of SOC for other 5d configurations is less clear. For example, 5d3 (Os5+) systems are expected to have an orbital singlet with reduced effective SOC. The pyrochlore Cd2Os2O7 nonetheless exhibits a MIT entwined with magnetic order phenomenologically similar to pyrochlore iridates. Here, we resolve the magnetic structure in Cd2Os2O7 with neutron diffraction and then via resonant inelastic X-ray scattering determine the salient electronic and magnetic energy scales controlling the MIT. In particular, SOC plays a subtle role in creating the electronic ground state but drives the magnetic order and emergence of a multiple spin-flip magnetic excitation.