Molecular spin-orbital fluctuations in cluster J<sub>eff</sub>-3/2 Mott insulator
ORAL
Abstract
Spin, orbit, and lattice dynamics are coupled in strong spin-orbit coupling systems. In such materials, a delicate balance of energy scales can achieve the novel quantum phase in condensed matter. Therefore, a systematic study on the role of spin-orbital coupling and exchange correlation is crucial for understanding the novel phases in materials. The lacunar spinels GaM4X8, M=(V, Nb, Ta), X=(S, Se) are a class of cluster-based Mott insulators that host various novel quantum phases. For M=V, a local Jahn-Teller effect quenches the orbital moment but is suppressed by spin-orbital coupling in M=(Nb, Ta) members. In addition, our inelastic neutron scattering uncovers the preceding phonon anomaly of the molecular Jeff-3/2 singlet ground state. In this presentation, I will discuss a systematic study of the entire family of compounds using neutron and x-ray total scattering measurements and inelastic neutron scattering on lattice dynamics. This work provides insight into the interplay between spin, orbit, and lattice dynamics in the molecular Jeff-3/2 Mott insulators.
*This material is based upon work supported by the U.S. Department of Energy, Office of Basic Energy Sciences, under Award Number DE-SC0021223.
–
Publication: [1] Tsung-Han Yang, S. Kawamoto, Tomoya Higo, SuYin Grass Wang, M. B. Stone, Joerg Neuefeind, Jacob P. C. Ruff, A. M. Milinda Abeykoon, Yu-Sheng Chen, S. Nakatsuji, and K. W. Plumb, Phys. Rev. Research 4, 033123 (2022).
[2] Tsung-Han Yang et al. planned paper (2022).
Presenters
-
Tsung-Han Yang
- Brown University