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Non-Hermitian Quantum Nonlinear Optics with Single Photons

Quantum Physics 2026-07-31 v1

Abstract

Quantum nonlinear optics seeks to harness strong photon-photon interactions for scalable quantum technologies, although dissipative losses still pose a major barrier to near-unity conversion efficiency. Here, we bridge non-Hermitian physics with the quantum nonlinear domain by exploiting perfect absorption to identify and optimize few-photon nonlinear processes. We theoretically investigate two circuit QED systems, operating in the light-matter ultrastrong coupling regime. The first (i) enables simultaneous two-atom excitations by single photons, while the second (ii) realizes the strong coupling between a single-photon and a two-photon Fock states. We demonstrate that, since the strong optical nonlinearities cause quantum spectral features to emerge already at the level of linear response theory, the perfect absorption condition in S11|S_{11}| enables near-deterministic single-photon down-conversion into (i) a qubit-qubit-correlated pair and (ii) a two-photon pair. We show that the conversion efficiency can be systematically optimized through experimentally accessible parameters, both linked to the emergence of Hermitian subspaces within the effective non-Hermitian Hamiltonians. These findings position non-Hermitian engineering as a broadly applicable route to optimizing quantum devices at the single-photon level, even beyond circuit-QED platforms.

Cite

@article{arxiv.2607.29313,
  title  = {Non-Hermitian Quantum Nonlinear Optics with Single Photons},
  author = {Samuel Napoli and Andrea Zappalá and Franco Nori and Salvatore Savasta and Daniele Lamberto},
  journal= {arXiv preprint arXiv:2607.29313},
  year   = {2026}
}

Comments

26 pages, 13 figures