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arXiv · 1711.09782

Recent Results on Light-Meson Spectroscopy from COMPASS

Abstract

The main goal of the spectroscopy program at COMPASS is to explore the light-meson spectrum below about $2\,\text{GeV}/c^2$ in diffractive production. Our flagship channel is the decay into three charged pions: $p + π^-\to π^-π^-π^+ + p_\text{recoil}$, for which COMPASS has acquired the so far world's largest dataset of roughly $50\,\text{M}$ exclusive events using an $190\,\text{GeV}/c$ $π^-$ beam. Based on this dataset, we performed an extensive partial-wave analysis. In order to extract the resonance parameters of the $π_J$ and $a_J$ states that appear in the $π^-π^-π^+$ system, we performed the so far largest resonance-model fit, using Breit-Wigner resonances and non-resonant contributions. This method in combination with the high statistical precision of our measurement allows us to study ground and excited states. We have found an evidence of the $a_1(1640)$ and $a_2(1700)$ in our data, which are the first excitations of the $a_1(1260)$ and $a_2(1320)$, respectively. The relative strength of the excited states with respect to the corresponding ground state is larger in the $f_2(1270)\,π$ decay mode compared to the $ρ(770)\,π$ decay mode. We also study the spectrum of $π_2$ states in our data. Therefore, we simultaneously describe four $J^{PC}=2^{-+}$ waves in the resonance-model fit by using three $π_2$ resonances, the $π_2(1670)$, the $π_2(1880)$, and the $π_2(2005)$. Within the limits of our model, we can conclude that the $π_2(2005)$ is required to describe all four $2^{-+}$ waves properly.

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Stefan Wallner. 2017-11-28. Recent Results on Light-Meson Spectroscopy from COMPASS. https://doi.org/10.22323/1.310.0032

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