Strange meson-nucleon states in the quark potential model
Hai-Jhun Wanng, Jun-Chen Su
Abstract
The quark potential model and resonating group method are used to investigate the KN bound states and/or resonances. The model potential consists of the t-channel and s-channel one-gluon exchange potentials and the confining potential with incorporating the QCD renormalization correction and the spin-orbital suppression effect in it. It was shown in our previous work that by considering the color octet contribution, use of this model to investigate the KN low energy elastic scattering leads to the results which are in pretty good agreement with the experimental data. In this paper, the same model and method are employed to calculate the masses of the KN bound systems. For this purpose, the resonating group equation is transformed into a standard Schrödinger equation in which a nonlocal effective KN interaction potential is included. Solving the Schrödinger equation by the variational method, we are able to reproduce the masses of some currently concerned KN states and get a view that these states possibly exist as KN molecular states. For the KN system, the same calculation gives no support to the existence of the resonance Θ+(1540) which was announced recently.
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