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arXiv:2608.16374·v1·High Energy Physics — Theory

Quantum Stability of the Fuzzy Sphere Black Hole Horizon

Chong-Sun Chu🇹🇼

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Abstract

We establish the perturbative stability of the fuzzy-sphere black-hole horizon in the large- matrix quantum mechanics of \cite{Chu:2024qil}. Large- counting shows that the leading quantum correction to the fluctuation spectrum is the planar bosonic one-loop contribution, while higher-loop bosonic effects and the leading fermionic one-loop contribution are parametrically suppressed. The classical spectrum contains a tachyonic mode and a marginal mode; we show that both acquire positive quantum curvature and are stabilized. For the general spectrum, we find that a factorization structure of the Hessian controls the leading quantum curvature and renders it non-negative. Quantum effects dominate the stabilization of generic low-angular-momentum modes, whereas classical curvature dominates at high angular momentum. The two effects become comparable in the crossover regime , where both must be retained. Under smoothness and non-saturation assumptions supported by finite- numerical tests, positivity of the quantum fluctuation spectrum is thus established for sufficiently large but finite . This local curvature stability is compatible with non-perturbative monopole tunneling. Intriguingly, the same mesoscopic angular momentum range also dominates the tunneling process, suggesting a distinguished IR--UV crossover regime in the quantum dynamics of the black-hole horizon.

Comments: 54 pages. no figure

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