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2025

Instability Analysis of Massive Static Phantom Wormholes via the Spectral Method

EEur. Phys. J. C
D. Batic and D. Dutykh
Eur. Phys. J. C 85(144): 144 (2025)
Open Access
arXiv VersionDOICode

Abstract

Using the spectral method, we investigate the scalar and axial quasinormal modes (QNMs) of massive static phantom wormholes. Our results reveal the existence of purely imaginary QNMs that were not identified in previous studies, suggesting potential (in)stabilities as the ratio of the Schwarzschild radius to the wormhole throat varies within a specific range. For scalar perturbations, instabilities arise when this ratio exceeds $1.0$, with the threshold value of $1.0$ itself included. In the case of axial perturbations, the onset of instability occurs at smaller ratios, reflecting the impact of gravitational waves on the wormhole's stability. The findings suggest that the wormhole remains stable when the throat size significantly exceeds the Schwarzschild radius. Our results align with existing literature but offer new insights into the stability conditions of phantom wormholes.

Keywords

scalar quasinormal modesgravitational wavesinstability analysisblack hole physicswormhole throatspectral methodgr-qcgeneral relativityaxial quasinormal modesmassive static phantom wormholesSchwarzschild radius

Bibliographic record

Journal: Eur. Phys. J. C
Volume: 85
Issue: 144
Pages: 144
arXiv: 2502.05486

BibTeX Citation

@article{Batic2025instabilityanalysis,
  author = {Batic, D. and Dutykh, D.},
  title = {Instability Analysis of Massive Static Phantom Wormholes via the Spectral Method},
  journal = {Eur. Phys. J. C},
  year = {2025},
  volume = {85},
  number = {144},
  pages = {144},
  doi = {10.1140/epjc/s10052-025-13867-x},
  abstract = {Using the spectral method, we investigate the scalar and axial quasinormal modes (QNMs) of massive static phantom wormholes. Our results reveal the existence of purely imaginary QNMs that were not identified in previous studies, suggesting potential (in)stabilities as the ratio of the Schwarzschild radius to the wormhole throat varies within a specific range. For scalar perturbations, instabilities arise when this ratio exceeds $1.0$, with the threshold value of $1.0$ itself included. In the case of axial perturbations, the onset of instability occurs at smaller ratios, reflecting the impact of gravitational waves on the wormhole's stability. The findings suggest that the wormhole remains stable when the throat size significantly exceeds the Schwarzschild radius. Our results align with existing literature but offer new insights into the stability conditions of phantom wormholes.},
  keywords = {scalar quasinormal modes, gravitational waves, instability analysis, black hole physics, wormhole throat, spectral method, gr-qc, general relativity, axial quasinormal modes, massive static phantom wormholes, Schwarzschild radius}
}