Dalitz plot studies of D0 K0S K+ K- decays in a factorization approach
Abstract
The BABAR Collaboration data of the D0 K0S K+ K- process are analyzed within a quasi two-body factorization framework. In earlier studies, assuming D0 transitions to two kaons and the transitions between one kaon and two kaons to proceed through the dominant intermediate resonances, we approximated them as being proportional to the kaon form factors. To obtain good fits, one has to multiply the scalar-kaon form factors, derived from unitary relativistic coupled-channel models or in a dispersion relation approach, by phenomenological energy-dependent functions. The final state kaon-kaon interactions in the S-, P- and D- waves are taken into account. All S-wave channels are treated in a unitary way. The K+K- and K0 K+ S-wave effective mass squared distributions, corrected for phase space, are shown, in a model-independent manner, to be significantly different. Then the f0(980) resonance must be included at variance with the BABAR analysis. The best fit has 19 free parameters and indicates i) the dominance of annihilation amplitudes, ii) a large dominance of the f0(980) meson in the near threshold K+K- invariant mass distribution and iii) a sizable branching fraction to the KS0 \ [(770)+ + (1450)+ + (1700)+] final states. An appendix provides an update of the determination of the isoscalar-scalar meson-meson amplitudes based on an enlarged set of data. A second appendix proposes two alternative fits based on scalar-kaon form factors calculated from the Muskhelishvili-Omn\`es dispersion relation approach. These fits have 2 quite close to that of the best fit but they show important contributions from both the f0 and a00 mesons and a weaker role of the + mesons.
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