arXiv:2606.09768·v1·High Energy Physics — Phenomenology
Dispersive analysis of the process
Bai-Long Hoid🇩🇪 · Igor Danilkin🇩🇪 · Anna Testa🇩🇪 · Marc Vanderhaeghen🇩🇪
Abstract
We present a dispersive amplitude analysis of the low-energy system in the radiative decay , using the mass-independent BESIII and intensities, the total spectrum, and the measured phase difference. The isoscalar -wave is described by a coupled-channel Muskhelishvili-Omnès representation, which implements the strong final-state interactions associated with the and . The -wave is treated with a single-channel Muskhelishvili-Omnès representation, where we identify all kinematic constraints of helicity amplitudes before transforming them to the experimental , , and multipoles. Smooth short-distance production of a pseudoscalar-meson pair is encoded in subtraction polynomials, while left-hand-cut effects are estimated and found to be numerically subleading. We identify the negative solution of the BESIII phase ambiguity, after using the modulo- freedom of production amplitudes, as the phase solution compatible with unitarity constraints, showing that the measured phase information can be accommodated with the Omnès phase motion without requiring large additional phases. By normalizing the BESIII intensities with the extracted branching fraction, we fix the absolute scale of the fitted amplitudes, making them suitable as input for future dispersive studies of two-pion contributions to gravitational form factors.
Comments: 28 pages, 6 figures