English

Rigorous characterization of continuous-variable quantum states via optical parametric amplifiers

Quantum Physics 2026-07-19 v1

Abstract

Characterizing non-Gaussian quantum states is of paramount importance for continuous-variable quantum information processing, yet conventional homodyne-measurement-based state tomography remains limited by optical loss, detector efficiency, and measurement bandwidth. Here, we introduce an integrated framework for loss-tolerant characterization and certification using high-gain phase-sensitive optical parametric amplification and power measurements. Our computationally efficient semidefinite programming approach enables faithful reconstruction of parity-symmetric quantum states from amplified quadrature measurements while substantially relaxing detector-efficiency requirements and increasing the measurement bandwidth. We further develop a certification framework that directly quantifies non-Gaussianity via stellar-rank witnesses and Wigner negativity, using the same quadrature-power measurements. We demonstrate the efficacy of the proposed framework through both simulated and experimental data for representative quantum states, including single-photon, Schrodinger cat, and Gottesman-Kitaev-Preskill (GKP) states. By unifying loss-tolerant measurements, state tomography, and nonclassical-state certification within a single experimentally accessible framework, our approach provides a practical pathway toward verifying increasingly complex states and can be readily implemented with current quantum photonic technologies.

Cite

@article{arxiv.2607.17023,
  title  = {Rigorous characterization of continuous-variable quantum states via optical parametric amplifiers},
  author = {Manthan Badbaria and Fumiya Hanamura and Maxime Garnier and Ulysse Chabaud and Rajveer Nehra},
  journal= {arXiv preprint arXiv:2607.17023},
  year   = {2026}
}

Comments

25 pages, 13 figures