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Setting Limits on Supersymmetry Using Simplified Models
Published on: November 15, 2013
Electromagnetic Form Factors and Structure of the T_{bb} Tetraquark from Lattice QCD
Ivan Vujmilovic1,2, Sara Collins3, Luka Leskovec1,2
1Jožef Stefan Institute, Jamova 39, 1000 Ljubljana, Slovenia.
Abstract:
We present the first lattice QCD determination of the electromagnetic form factors of the exotic tetraquark T_{bb}(bbu[over ¯]d[over ¯]) with quantum numbers I(J^{P})=0(1^{+}). The extracted form factors encode information about its internal structure, including the charge distribution and the magnetic dipole moments, determined separately for the light and heavy quarks. Our results provide evidence in favor of it being a bound state consisting of a compact heavy diquark [bb] in a color-antitriplet with spin one and a light antidiquark [u[over ¯]d[over ¯]] in a color-triplet with spin zero. The charge radius of T_{bb} is found to be significantly smaller than the combined charge radii of B and B^{*} mesons. These two comprise the lowest-lying threshold BB^{*} in the channel that we are considering, and their electric charge form factors are also determined. The computations were performed on a single ensemble, generated by the Coordinated Lattice Simulations effort, with N_{f}=2+1 dynamical quarks and a lattice spacing of approximately a≈0.064 fm at the pion mass m_{π}≈290 MeV.
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