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arxiv: 1507.04640 · v1 · submitted 2015-07-16 · ✦ hep-ph · nucl-th

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The Λ_b to J/psi ~ K ~ Xi decay and the higher order chiral terms of the meson baryon interaction

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classification ✦ hep-ph nucl-th
keywords lambdadecayinteractionchiralhigherordertermsfinal
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We study the weak decay of the $\Lambda_b$ into $ J/\psi ~ K ~ \Xi$ and $J/\psi ~ \eta ~ \Lambda$ states, and relate these processes to the $\Lambda_b \to J/\psi ~ \bar K ~N$ decay mode. The elementary weak transition at the quark level proceeds via the creation of a $J/\psi$ meson and an excited $sud$ system with $I=0$, which upon hadronization leads to $\bar K N$ or $\eta \Lambda$ pairs. These states undergo final state interaction in coupled channels and produce a final meson-baryon pair. The $K \Xi$ state only occurs via rescattering, hence making the $\Lambda_b \to J/\psi ~ K ~ \Xi$ process very sensitive to the details of the meson-baryon interaction in strangeness $S=-1$ and isospin $I=0$. We show that the corresponding invariant mass distribution is dominated by the next-to-leading order terms of the chiral interaction. The $I=0$ selectivity of this decay, and its large sensitivity to the higher order terms, makes its measurement very useful and complementary to the $K^- p \to K \Xi$ cross section data. The rates of the $\Lambda_b \to J/\psi ~ K ~ \Xi$ and $\Lambda_b \to J/\psi ~ \eta ~ \Lambda$ invariant mass distributions are sizable compared to those of the $\Lambda_b \to J/\psi ~ \bar K ~N$ decay, which is measured experimentally, thus, we provide arguments for an experimental determination of these decay modes that will help us understand better the chiral dynamics at higher energies.

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