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A novel method for searching the $\Xi_c^{0/+}$-$\Xi_c^{\prime 0/+}$ mixing effect in the angular distribution analysis of a four-body $\Xi_c^{0/+}$ decay

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abstract

In this work, we raised a novel method for searching the $\Xi^{0+}_c$-$\Xi_c^{0+\prime}$ mixing effect in an angular distribution analysis of the $\Xi_c\to\Xi^{(\prime)}(\Lambda \pi)\ell^+\nu$ decay, where the mixing effect can be observed by the appearance of the $\Xi^{\prime}$ resonant. Armed with this angular distribution, the decay branching fraction and the forward-backward asymmetry are predicted. We pointed out that the forward-backward asymmetry, as a function of the invariant mass square of $\Xi^{(\prime)}$ and the $\Xi^{0+}_c$-$\Xi_c^{0+\prime}$ mixing angle $\theta_c$, can be used to distinguish the two resonants $\Xi^{(\prime)}$ and even provide a possibility to determine the exact mixing angle.

fields

hep-ph 1

years

2025 1

verdicts

CONDITIONAL 1

representative citing papers

Hadrons in group expansion

hep-ph · 2025-06-02 · conditional · novelty 4.0

Ground-state baryon masses are parametrized by mixing SU(4) flavor representations, with estimated Sigma_c being 72% 20M and 28% 20S, and Xi_c being 90% anti-triplet and 10% sextet.

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  • Hadrons in group expansion hep-ph · 2025-06-02 · conditional · none · ref 81 · internal anchor

    Ground-state baryon masses are parametrized by mixing SU(4) flavor representations, with estimated Sigma_c being 72% 20M and 28% 20S, and Xi_c being 90% anti-triplet and 10% sextet.