Magnon-mediated exciton-exciton interaction in a van der Waals antiferromagnet
arXiv:2409.18501 · doi:10.1038/s41563-025-02183-0
Abstract
Excitons are fundamental excitations that govern the optical properties of semiconductors. Interacting excitons can lead to various emergent phases of matter and large nonlinear optical responses. In most semiconductors, excitons interact via exchange interaction or phase space filling. Correlated materials that host excitons coupled to other degrees of freedom offer hitherto unexplored pathways for controlling these interactions. Here, we demonstrate magnon-mediated excitonic interactions in CrSBr, an antiferromagnetic semiconductor. This interaction manifests as the dependence of exciton energy on exciton density via a magnonic adjustment of the spin canting angle. Our study demonstrates the emergence of quasiparticle-mediated interactions in correlated quantum materials, leading to large nonlinear optical responses and potential device concepts such as magnon-mediated quantum transducers.
33 pages, 14 figures
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Cited by in corpus (12)
- Distinct Magneto-Optical Response of Frenkel and Wannier Excitons in CrSBr
- Interplay of energy and charge transfer in WSe2/CrSBr heterostructures
- Surface-Dominated Quantum Metric-Induced Nonlinear Transport in the Layered Antiferromagnet CrSBr
- Tunable Nanophotonic Devices and Cavities based on a Two-Dimensional Magnet
- Magnetic Correlation Spectroscopy in CrSBr
- Directional Flow of Confined Polaritons in CrSBr
- Interplay of vibrational, electronic, and magnetic states in CrSBr
- Quasiparticle Description of Angle-Resolved Photoemission Spectroscopy for SrCuO2
- Boltzmann transport theory of magnon-exciton drag
- Theory of interaction-induced charge order in CrSBr
- Excitonic optical absorption in strained monolayer CrSBr
- Magnetic Field-Tunable Repulsive Exciton-Exciton Interaction in the van der Waals Antiferromagnet NiPS