Formation of a condensate during charged collapse
arXiv:1506.06682 · doi:10.1088/0264-9381/32/16/165007
Abstract
We observe a condensate forming in the interior of a black hole (BH) during numerical simulations of gravitational collapse of a massless charged (complex) scalar field. The magnitude of the scalar field in the interior tends to a non-zero constant; spontaneous breaking of gauge symmetry occurs and a condensate forms. This phenomena occurs in the presence of a BH without the standard symmetry breaking quartic potential; the breaking occurs via the dynamics of the system itself. We also observe that the scalar field in the interior rotates in the complex plane and show that it matches numerically the electric potential to within . That a charged scalar condensate can form near the horizon of a black hole in the Abelian Higgs model without the standard symmetry breaking potential had previously been shown analytically in an explicit model involving a massive scalar field in an background. Our numerical simulation lends strong support to this finding, although in our case the scalar field is massless and the spacetime is asymptotically flat.
21 pages, 10 figures,to appear in CQG. arXiv admin note: text overlap with arXiv:1203.2279 v2: matches published version in Class. Quantum Grav
References in corpus (6)
- Black holes in the TeVeS theory of gravity and their thermodynamics
- Extremal black holes, gravitational entropy and nonstationary metric fields
- Emergence of thin shell structure during collapse in isotropic coordinates
- Classical thermodynamics of gravitational collapse
- Numerical thermodynamic studies of classical gravitational collapse in 3+1 and 4+1 dimensions
- Black hole free energy during charged collapse: a numerical study