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Holographic topological defects in a ring: role of diverse boundary conditions

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arxiv 2111.15230 v2 pith:FK7C2YEP submitted 2021-11-30 hep-th

Holographic topological defects in a ring: role of diverse boundary conditions

classification hep-th
keywords holographicboundaryconditionscorrelationdefectsdifferentfieldsfunction
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We investigate the formation of topological defects in the course of a dynamical phase transition with different boundary conditions in a ring from AdS/CFT correspondence. According to the Kibble-Zurek mechanism, quenching the system across the critical point to symmetry-breaking phase will result in topological defects -- winding numbers -- in a compact ring. By setting two different boundary conditions, i.e., Dirichlet and Neumann boundary conditions for the spatial component of the gauge fields in the AdS boundary, we achieve the holographic superfluid and holographic superconductor models, respectively. In the final equilibrium state, different configurations of the order parameter phases for these two models indicate a persistent superflow in the holographic superfluid, however, the holographic superconductor lacks this superflow due to the existence of local gauge fields. The two-point correlation functions of the order parameter also behave differently. In particular, for holographic superfluid the correlation function is a cosine function depending on the winding number. The correlation function for the holographic superconductor, however, decays rapidly at short distances and vanishes at long distance, due to the random localities of the gauge fields. These results are consistent with our theoretical analysis.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Phase separation seeded by Z2 and U(1) topological defects from holography

    hep-th 2026-05 unverdicted novelty 6.0

    Holographic simulations demonstrate that Z2 and U(1) topological defects universally seed phase separation, with cores expanding into domains under a double-quench protocol.

  2. Kibble-Zurek Mechanism and Current-Phase Relation in a Holographic Josephson Junction

    hep-th 2026-07 conditional novelty 5.0

    In a holographic superfluid ring quenched through its transition, the weak-link current follows J = Jmax sin(Δφ), with Jmax exponentially sensitive to junction width, depth, and final temperature.