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arXiv · 1908.07802

The ${γ^* γ^* \to η_c (1S,2S)}$ transition form factors for spacelike photons

Abstract

We derive the light-front wave function (LFWF) representation of the $γ^* γ^* \to η_c(1S)\,,η_c(2S)$ transition form factor $F(Q_1^2, Q_2^2)$ for two virtual photons in the initial state. For the LFWF, we use different models obtained from the solution of the Schrödinger equation for a variety of $c \bar c$ potentials. We compare our results to the BaBar experimental data for the $η_c(1S)$ transition form factor, for one real and one virtual photon. We observe that the onset of the asymptotic behaviour is strongly delayed and discuss applicability of the collinear and/or massless limit. We present some examples of two-dimensional distributions for $F (Q_1^2,Q_2^2)$. A factorization breaking measure is proposed and factorization breaking effects are quantified and shown to be almost model independent. Factorization is shown to be strongly broken, and a scaling of the form factor as a function of $\bar Q^2 = (Q_1^2 + Q_2^2)/2$ is obtained.

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BibTeXRIS

Izabela Babiarz, Victor P. Goncalves, Roman Pasechnik, Wolfgang Schäfer, Antoni Szczurek. 2019-08-21. The ${γ^* γ^* \to η_c (1S,2S)}$ transition form factors for spacelike photons. https://doi.org/10.1103/physrevd.100.054018

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