Engineering Nonclassical States via the Dynamical Casimir Effect
Abstract
Nonadiabatic driving in ultrastrongly coupled light--matter systems is commonly regarded as a source of errors, as counter-rotating interactions convert vacuum fluctuations into real excitations through the dynamical Casimir effect (DCE). Here we show that, instead, the DCE can be harnessed as a resource for engineering nonclassical states of light. Considering a cavity mode ultrastrongly coupled to a frequency-tunable qubit, we employ optimal quantum control to design driving protocols that convert vacuum fluctuations into targeted states. Numerical optimization reveals a versatile and robust approach for the deterministic preparation of a broad class of nonclassical states, illustrated here through Fock states, squeezed states, and Schr\"odinger-cat-state superpositions.
Cite
@article{arxiv.2607.08275,
title = {Engineering Nonclassical States via the Dynamical Casimir Effect},
author = {Maristella Crotti and Luca Razzoli and Giacomo Guarnieri and Luigi Giannelli and Giuseppe A. Falci and Giuliano Benenti},
journal= {arXiv preprint arXiv:2607.08275},
year = {2026}
}
Comments
Main text (9 pages, 6 figures) + Supplemental Material (7 pages, 1 figure)