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arXiv · 2011.00921

Two-Meson Form Factors in Unitarized Chiral Perturbation Theory

Abstract

We present a comprehensive analysis of form factors for two light pseudoscalar mesons induced by scalar, vector, and tensor quark operators. The theoretical framework is based on a combination of unitarized chiral perturbation theory and dispersion relations. The low-energy constants in chiral perturbation theory are fixed by a global fit to the available data of the two-meson scattering phase shifts. Each form factor derived from unitarized chiral perturbation theory is improved by iteratively applying a dispersion relation. This study updates the existing results in the literature and explores those that have not been systematically studied previously, in particular the two-meson tensor form factors within unitarized chiral perturbation theory. We also discuss the applications of these form factors as mandatory inputs for low-energy phenomena, such as the semi-leptonic decays $B_s\to \pi^+\pi^-\ell^+\ell^-$ and the $\tau$ lepton decay $\tau\rightarrow\pi^{-}\pi^{0}\nu_{\tau}$, in searches for physics beyond the Standard Model.

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Yu-Ji Shi, Chien-Yeah Seng, Feng-Kun Guo, Bastian Kubis, Ulf-G. Meißner, Wei Wang. 2020-11-02. Two-Meson Form Factors in Unitarized Chiral Perturbation Theory. https://doi.org/10.1007/jhep04(2021)086

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