English

Quantum metrology of two-photon absorption

Quantum Physics 2021-09-22 v1

Abstract

Two-photon absorption (TPA) is of fundamental importance in super-resolution imaging and spectroscopy. Its nonlinear character allows for the prospect of using quantum resources, such as entanglement, to improve measurement precision or to gain new information on, e.g., ultrafast molecular dynamics. Here, we establish the metrological properties of nonclassical squeezed light sources for precision measurements of TPA cross sections. We find that there is no fundamental limit for the precision achievable with squeezed states in the limit of very small cross sections. Considering the most relevant measurement strategies -- namely photon counting and quadrature measurements -- we determine the quantum advantage provided by squeezed states as compared to coherent states. We find that squeezed states outperform the precision achievable by coherent states when performing quadrature measurements, which provide improved scaling of the Fisher information with respect to the mean photon number n4\sim n^4. Due to the interplay of the incoherent nature and the nonlinearity of the TPA process, unusual scaling can also be obtained with coherent states, which feature a n3\sim n^3 scaling in both quadrature and photon-counting measurements.

Keywords

Cite

@article{arxiv.2105.01561,
  title  = {Quantum metrology of two-photon absorption},
  author = {Carlos Sánchez Muñoz and Gaetano Frascella and Frank Schlawin},
  journal= {arXiv preprint arXiv:2105.01561},
  year   = {2021}
}

Comments

10 pages, 6 figures

R2 v1 2026-06-24T01:46:21.528Z