Spin-orbit exciton-induced phonon chirality in a quantum magnet.
David LujanJeongheon ChoeSwati ChaudharyGaihua YeCynthia NnokweMartin Rodriguez-VegaJiaming HeFrank Y GaoT Nathan NunleyEdoardo BaldiniJianshi ZhouGregory A FieteRui HeXiaoqin LiPublished in: Proceedings of the National Academy of Sciences of the United States of America (2024)
The interplay of charge, spin, lattice, and orbital degrees of freedom in correlated materials often leads to rich and exotic properties. Recent studies have brought new perspectives to bosonic collective excitations in correlated materials. For example, inelastic neutron scattering experiments revealed non-trivial band topology for magnons and spin-orbit excitons (SOEs) in a quantum magnet CoTiO 3 (CTO). Here, we report phonon properties resulting from a combination of strong spin-orbit coupling, large crystal field splitting, and trigonal distortion in CTO. Specifically, the interaction between SOEs and phonons endows chirality to two [Formula: see text] phonon modes and leads to large phonon magnetic moments observed in magneto-Raman spectra. The remarkably strong magneto-phononic effect originates from the hybridization of SOEs and phonons due to their close energy proximity. While chiral phonons have been associated with electronic topology in some materials, our work suggests opportunities may arise by exploring chiral phonons coupled to topological bosons.
Keyphrases
- room temperature
- density functional theory
- molecular dynamics
- single molecule
- ionic liquid
- transition metal
- energy transfer
- high glucose
- capillary electrophoresis
- oxidative stress
- high resolution
- diabetic rats
- preterm infants
- molecularly imprinted
- stress induced
- raman spectroscopy
- preterm birth
- low birth weight
- solid state