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On the stability of scalar-vacuum space-times

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arxiv 1109.6576 v2 pith:ABK72MW4 submitted 2011-09-29 gr-qc astro-ph.COhep-th

classification gr-qcastro-ph.COhep-th
keywords perturbationspotentialscalarsolutionsanti-fisherfieldincludinginstability
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We study the stability of static, spherically symmetric solutions to the Einstein equations with a scalar field as the source. We describe a general methodology of studying small radial perturbations of scalar-vacuum configurations with arbitrary potentials V(\phi), and in particular space-times with throats (including wormholes), which are possible if the scalar is phantom. At such a throat, the effective potential for perturbations V_eff has a positive pole (a potential wall) that prevents a complete perturbation analysis. We show that, generically, (i) V_eff has precisely the form required for regularization by the known S-deformation method, and (ii) a solution with the regularized potential leads to regular scalar field and metric perturbations of the initial configuration. The well-known conformal mappings make these results also applicable to scalar-tensor and f(R) theories of gravity. As a particular example, we prove the instability of all static solutions with both normal and phantom scalars and V(\phi) = 0 under spherical perturbations. We thus confirm the previous results on the unstable nature of anti-Fisher wormholes and Fisher's singular solution and prove the instability of other branches of these solutions including the anti-Fisher "cold black holes".

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Cited by 2 Pith papers

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  1. Penrose hypothesis and instability of naked singularities in static spherically symmetric systems with scalar fields

    gr-qc 2025-07 conditional novelty 5.0 of 10

    Static spherically symmetric scalar-field spacetimes with small scalar charge are linearly unstable to radial perturbations, giving numerical support for cosmic censorship in this class.

  2. Ellis-Bronnikov Wormhole Shadows with Spherically Symmetric Accretion Flow

    gr-qc 2026-06 unverdicted novelty 4.0 of 10

    GRRT simulations of spherically symmetric accretion show the Ellis-Bronnikov wormhole yields brighter shadow and photon ring than Schwarzschild, both consistent with EHT M87* data.

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