English

Squeezing light with optomechanical and spin-light quantum interfaces

Quantum Physics 2025-10-09 v2 Atomic Physics Optics

Abstract

We investigate squeezing of light through quantum-noise-limited interactions with two different material systems: an ultracold atomic spin ensemble and a micromechanical membrane. Both systems feature a light-matter quantum interface that we exploit, respectively, to generate polarization squeezing of light through Faraday interaction with the collective atomic spin precession, and ponderomotive quadrature squeezing of light through radiation pressure interaction with the membrane vibrations in an optical cavity. Both experiments are described in a common theoretical framework, highlighting the conceptual similarities between them. The observation of squeezing certifies light-matter coupling with large quantum cooperativity, a prerequisite for applications in quantum science and technology. In our experiments, we obtain a maximal cooperativity of Cqu=10C_\mathrm{qu} =10 for the spin and Cqu=9C_\mathrm{qu} = 9 for the membrane. In particular, our results pave the way for hybrid quantum systems where spin and mechanical degrees of freedom are coherently coupled via light, enabling new protocols for quantum state transfer and entanglement generation over macroscopic distances.

Keywords

Cite

@article{arxiv.2504.03507,
  title  = {Squeezing light with optomechanical and spin-light quantum interfaces},
  author = {Gian-Luca Schmid and Manel Bosch Aguilera and Chun Tat Ngai and Maryse Ernzer and Luiz Couto Correa Pinto Filho and Dennis Høj and Ulrik Lund Andersen and Florian Goschin and Philipp Treutlein},
  journal= {arXiv preprint arXiv:2504.03507},
  year   = {2025}
}

Comments

13 pages, 5 figures, 1 table

R2 v1 2026-06-28T22:46:57.036Z