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Neutron stars more compact than black holes as a probe of strong-field gravity

Shoulong Li1,*, H. Lü2,3,†, Yong Gao4,5,6,‡, Rui Xu7,5,§, Lijing Shao5,8,∥, and Hongwei Yu1,¶

  • *Contact author: shoulongli@hunnu.edu.cn
  • †Contact author: mrhonglu@gmail.com
  • ‡Contact author: gaoyong.physics@pku.edu.cn
  • §Contact author: xuru@tsinghua.edu.cn
  • ∥Contact author: lshao@pku.edu.cn
  • Contact author: hwyu@hunnu.edu.cn

Phys. Rev. D 114, L021504 – Published 21 July, 2026

DOI: https://doi.org/10.1103/3c9w-xc9l

Abstract

Probing gravity in its strongest regime is a central goal of modern physics, as the nature of the most compact objects reflects fundamental aspects of Einstein’s theory of general relativity (GR). In GR, black holes are regarded as the most compact objects in the Universe. Here, for the first time, we demonstrate that stable stellar configurations more compact than black holes can arise when neutron-star equations of state are embedded in quasitopological gravity, a class of higher-curvature extensions of GR. We construct such ultracompact stars, analyze their macroscopic properties, and establish their stability against radial perturbations, confirming their physical plausibility. We further identify potential observational signatures to distinguish these stars from black holes, most notably gravitational-wave echoes whose detectability could provide direct evidence of physics beyond Einstein’s GR in the strong-field regime.

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See Also

Neutron stars more compact than black holes in quasitopological gravity: Equilibrium configurations and radial stability

Liang Liang, Zhe Luo, Shoulong Li, and Hongwei Yu
Phys. Rev. D 114, 024049 (2026)

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