Quantum control of Hubbard excitons
Abstract
Quantum control of the many-body wavefunction is a central challenge in quantum materials research, as it could yield a precise control knob to manipulate emergent phenomena. Floquet engineering, the coherent dressing of quantum states with periodic non-resonant optical fields, has become an important strategy for quantum control. Most applications to solid-state systems have targeted weakly interacting or single-ion states, leaving the manipulation of many-body wavefunctions largely unexplored. Here, we use Floquet engineering to achieve quantum control of a strongly correlated Hubbard exciton in the one-dimensional Mott insulator SrCuO. A nonresonant midinfrared optical field coherently dresses the exciton wavefunction, driving its rotation between bright and dark states. We use resonant third-harmonic generation to quantify ultrafast rotations on the Bloch sphere spanned by these exciton states. Our work advances the quest towards programmable control of correlated states and exciton-based quantum sensing.
Cite
@article{arxiv.2601.20695,
title = {Quantum control of Hubbard excitons},
author = {D. R. Baykusheva and D. P. Carmichael and C. S. Weber and I-T. Lu and F. Glerean and T. Meng and P. B. M. De Oliveira and C. C. Homes and I. A. Zaliznyak and G. D. Gu and M. P. M. Dean and A. Rubio and D. M. Kennes and M. Claassen and M. Mitrano},
journal= {arXiv preprint arXiv:2601.20695},
year = {2026}
}
Comments
main+supplementary, 43 pages, 12 figures