Lattice distortion in the spin-orbital entangled state in RVO3 perovskites
J.-Q. Yan, W. Tian, H. B. Cao, S. Chi, F. Ye, A. Llobet, Q. Chen, J., Ma, Y. Ren, J.-G. Cheng, J.-S. Zhou, M. A. McGuire, and R. J. McQueeney

TL;DR
This study investigates how lattice distortions influence the spin-orbital entangled state in RVO3 perovskites, revealing a competition between local structural distortions and long-range orbital order that affects magnetic ground states.
Contribution
It provides detailed experimental evidence of lattice responses and their role in the spin-orbital entanglement and orbital ordering transitions in RVO3 perovskites.
Findings
Local lattice distortions support spin-orbital entanglement.
Competition between distortions and orbital order induces phase transitions.
Rare earth disorder favors spin-orbital entanglement over Jahn-Teller distortions.
Abstract
We report a thorough study of YLaVO single crystals by measuring magnetic properties, specific heat, thermal conductivity, x-ray and neutron diffraction with the motivation of revealing the lattice response to the spin-orbital entanglement in \textit{R}VO. Upon cooling from room temperature, the orbitally disordered paramagnetic state changes around T*220\,K to spin-orbital entangled state which is then followed by a transition at T=116\,K to C-type orbital ordered (OO) and G-type antiferromagnetic ordered (AF) ground state. In the temperature interval T, the VO octahedra have two comparable in-plane V-O bonds which are longer than the out-of-plane V-O1 bond. This local structural distortion supports the spin-orbital entanglement of partially filled and degenerate yz/zx orbitals. However, this distortion is incompatible with the steric…
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