English

Twisted Gaussian Schell States in Quantum Optics: Twist-Assisted Nonclassicality and Entanglement

Quantum Physics 2026-07-01 v1

Abstract

We introduce the Twisted Gaussian Schell (TGS) state, a two-mode mixed Gaussian state defined as the quantum-optical analog of the Twisted Gaussian Schell-model beam of classical paraxial optics, characterized by the so-called twist phase. In the TGS state, the twist parameter arises when an asymmetric two-mode thermal state is subject to local squeezing after the action of phase shifters and a beam splitter. Its defining quantum feature is nonclassicality: although the state is separable in its natural bipartition, when the twist parameter is nonzero there are global quadratures that can be squeezed below the shot-noise limit. The nonclassicality has also a direct signature in the joint photon-number distribution, which we obtain in closed form. Moreover, coupling each mode to an ancillary vacuum at a balanced beam splitter yields a four-mode state with entanglement in select 2×22\times2 bipartitions, with local description given by two TGS states, and all 1×31\times3 bipartitions. For fixed input squeezing, increasing the twist parameter activates entanglement where the state is otherwise separable and deepens it where already present. The classical physicality bound on the twist parameter coincides with the quantum physicality condition. These results advance the two-way bridge between classical beam engineering and quantum information.

Keywords

Cite

@article{arxiv.2607.00837,
  title  = {Twisted Gaussian Schell States in Quantum Optics: Twist-Assisted Nonclassicality and Entanglement},
  author = {Fabricio Toscano and G. Cañas and A. Z. Khoury and P. H. Souto Ribeiro and S. P. Walborn},
  journal= {arXiv preprint arXiv:2607.00837},
  year   = {2026}
}

Comments

15 pages, 6 figures