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Charmonium in electromagnetic and vortical fields

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arxiv 2108.02125 v1 pith:LTVUFP2V submitted 2021-08-04 nucl-th hep-ph

Charmonium in electromagnetic and vortical fields

classification nucl-th hep-ph
keywords electromagneticfieldsvorticalanisotropicboundcharmoniumcollisionsequation
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Due to larger mass and earlier production, heavy quark(quarkonium) can be sensitive probes to investigate the fast decaying electromagnetic and vortical fields produced in heavy-ion collisions. The non-relativistic Schroedinger-like equation for heavy quarks under strong electromagnetic fields in the rotating frame is deduced and used to construct the two-body equation for the charmonium system. The effective potential between charm and anti-charm becomes anisotropic in electromagnetic and vortical fields, especially along the direction of the Lorentz force. The vorticity will affect this asymmetry property largely and catalyze the transition from strong interaction dominant bound state to electromagnetic and vortical interaction controlled anisotropic bound state. It is possible to be realized in high-energy nuclear collisions.

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