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arXiv · 0712.1938

The $σK$ coupling in the chiral unitary approach and the isoscalar $\bar{K}N$, $\bar{K}A$ interaction

Abstract

We evaluate the "$σ$" exchange contribution to the $\bar{K}N\to\bar{K}N$ scattering within a chiral unitary approach. We show that the chiral transition potentials for $ππ\to K \bar{K}$ in the $t$-channel lead to a "$σ$" contribution that vanishes in the $\bar{K}$ forward direction and, hence, would produce a null "$σ$" exchange contribution to the $K^-$ optical potential in nuclear matter in a simple impulse approximation. This is a consequence of the fact that the leading order chiral Lagrangian gives an I=0 $ππ\to K\bar{K}$ amplitude proportional to the squared momentum transfer, $q^2$. This finding poses questions on the meaning or the origin of "$σ$" exchange potentials used in relativistic mean field approaches to the $K^-$ nuclear selfenergy. This elementary "$σ$" exchange potential in $\bar{K}N\to\bar{K}N$ is compared to the Weinberg-Tomozawa term and is found to be smaller than present theoretical uncertainties but will be relevant in the future when aiming at fitting increasingly more accurate data.

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BibTeXRIS

A. Martínez Torres, K. P. Khemchandani, E. Oset. 2008-05-23. The $σK$ coupling in the chiral unitary approach and the isoscalar $\bar{K}N$, $\bar{K}A$ interaction. https://doi.org/10.1140/epja%2Fi2007-10574-3

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