J/Psi dissociation in parity-odd bubbles
arXiv:1105.5360 · doi:10.1016/j.physletb.2011.10.047
Abstract
We calculate the quarkonium dissociation rate in the P and CP-odd domains (bubbles) that were possibly created in heavy-ion collisions. In the presence of the magnetic field produced by the valence quarks of colliding ions, parity-odd domains generate electric field. Quarkonium dissociation is the result of quantum tunneling of quark or antiquark through the potential barrier in this electric field. The strength of the electric field in the quarkonium comoving frame depends on the quarkonium velocity with respect to the background magnetic field. We investigate momentum, electric field strength and azimuthal dependence of the dissociation rate. Azimuthal distribution of quarkonia surviving in the electromagnetic field is strongly anisotropic; the form of anisotropy depends on the relation between the electric and magnetic fields and quarkonium momentum. These features can be used to explore the properties of the electromagnetic field created in heavy ion collisions.
11 pages, 5 figures; v2: more discussions added
References in corpus (8)
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- Electromagnetic field evolution in relativistic heavy-ion collisions
- Charge separation induced by P-odd bubbles in QCD matter
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Cited by in corpus (10)
- Charmonia and Bottomonia in a Magnetic Field
- Electromagnetic radiation by quark-gluon plasma in magnetic field
- A review of quarkonia under strong magnetic fields
- Charmonium transition in electromagnetic and rotational fields
- Hadronic Paschen-Back effect
- Quarkonium radiative decays from the hadronic Paschen-Back effect
- Survival probabilities of charmonia as a clue to measure transient magnetic fields
- Magneto-rotational dissociation of heavy hadrons in Relativistic Heavy-Ion Collisions
- Landau-Zener-Stückelberg-Majorana dynamics of magnetized quarkonia
- Quarkonium spectra with magnetically induced anisotropic confinement