Temperature-induced valence-state transition in double perovskite Ba2-xSrxTbIrO6
Z. Y. Zhao, S. Calder, H. D. Zhou, Z. Z. He, M. A. McGuire, and J.-Q., Yan

TL;DR
This study investigates a temperature-driven valence-state transition in Ba$_{2-x}$Sr$_x$TbIrO$_6$, revealing how electron transfer between Tb and Ir ions influences magnetic order and lattice properties, with potential for magnetic switching in thin films.
Contribution
It demonstrates a controllable valence-state transition in Ba$_{2-x}$Sr$_x$TbIrO$_6$ and its impact on magnetic and structural properties, highlighting a new way to tune magnetism via temperature and composition.
Findings
Valence transition occurs between Tb$^{3+}$/Ir$^{5+}$ and Tb$^{4+}$/Ir$^{4+}$ phases.
Long-range antiferromagnetic order is promoted by Ir$^{4+}$ ions.
Spin-glass behavior observed at low x due to Ir$^{5+}$ ions acting as spacers.
Abstract
In this work, a temperature-induced valence-state transition is studied in a narrow composition range of BaSrTbIrO. The valence-state transition involves an electron transfer between Tb and Ir leading to the valence-state change between Tb/Ir and Tb/Ir phases. This first-order transition has a dramatic effect on the lattice, transport properties, and the long-range magnetic order at low temperatures for both Tb and Ir ions. Ir ion has an electronic configuration of 5 ( = 0) which is expected to be nonmagnetic. In contrast, Ir ion with a configuration of 5( = 1/2) favors a long-range magnetic order. For = 0.1 with Tb/Ir configuration to the lowest temperature (2 K) investigated in this work, a spin-glass behavior is observed around 5 K indicating Ir ( = 0) ions…
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Taxonomy
TopicsAdvanced Condensed Matter Physics · Magnetic and transport properties of perovskites and related materials · Physics of Superconductivity and Magnetism
