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Maximizing the Validity of the Gaussian Approximation for the biphoton State from Parametric Downconversion

Quantum Physics 2023-01-04 v2

Abstract

Spontaneous parametric down-conversion (SPDC) is widely used in quantum applications based on photonic entanglement. The efficiency of photon pair generation is often characterized by means of a sinc(LΔk/2)sinc(L\Delta k/2)-function, where LL is the length of the nonlinear medium and Δk\Delta k the phase mismatch between the pump and down-converted fields. In theoretical investigations, the \textit{sinc} behavior of the phase mismatch has often been approximated by a Gaussian function exp(αx2)\exp{(-\alpha x^2)} in order to derive analytical expressions for the SPDC process. Different values have been chosen in the literature for the optimization factor α\alpha, for instance by comparing the widths of \textit{sinc} and Gaussian functions or the momentum of down-converted photons. As a consequence, different values for α\alpha provide different theoretical predictions for the same setup. Therefore, an informed and unique choice of this parameter is necessary. In this work, we present a choice of α\alpha which maximizes the validity of the Gaussian approximation. Moreover, we also discuss the so-called \textit{super}-Gaussian and \textit{cosine}-Gaussian approximations as practical alternatives with improved predictive power for experiments.

Keywords

Cite

@article{arxiv.2210.02340,
  title  = {Maximizing the Validity of the Gaussian Approximation for the biphoton State from Parametric Downconversion},
  author = {Baghdasar Baghdasaryan and Fabian Steinlechner and Stephan Fritzsche},
  journal= {arXiv preprint arXiv:2210.02340},
  year   = {2023}
}
R2 v1 2026-06-28T02:51:49.961Z