Dyonic Black Holes in Lorentz-Violating Gravity with a Background Kalb--Ramond Field

Fuente: arXiv
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Main Authors: Lin, Yu-Xuan, Liu, Jia-Zhou, Liu, Yu-Xiao
Format: Preprint
Published: 2026
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author Lin, Yu-Xuan
Liu, Jia-Zhou
Liu, Yu-Xiao
author_facet Lin, Yu-Xuan
Liu, Jia-Zhou
Liu, Yu-Xiao
contents By introducing a nonminimal coupling between the Kalb--Ramond field and the electromagnetic field, we construct an exact four-dimensional static, spherically symmetric dyonic black hole solution in Lorentz-violating gravity with a background Kalb--Ramond field. The curvature invariants show that the spacetime retains a genuine curvature singularity at $r=0$. We then analyze the geodesic motion of null and timelike particles and obtain the photon-sphere radius, the shadow radius, and the innermost stable circular orbit, demonstrating that both the Lorentz-violating parameter and the dyonic charges can appreciably modify the shadow size and the domain of stable circular motion. In the extended phase space, we derive the thermodynamic quantities and verify the first law of black hole thermodynamics together with the Smarr relation. The system also exhibits a first-order phase transition between small and large black holes, and its phase structure is strongly influenced by the Lorentz-violating parameter and the dyonic charges.
format Preprint
id arxiv_https___arxiv_org_abs_2605_18371
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Dyonic Black Holes in Lorentz-Violating Gravity with a Background Kalb--Ramond Field
Lin, Yu-Xuan
Liu, Jia-Zhou
Liu, Yu-Xiao
General Relativity and Quantum Cosmology
By introducing a nonminimal coupling between the Kalb--Ramond field and the electromagnetic field, we construct an exact four-dimensional static, spherically symmetric dyonic black hole solution in Lorentz-violating gravity with a background Kalb--Ramond field. The curvature invariants show that the spacetime retains a genuine curvature singularity at $r=0$. We then analyze the geodesic motion of null and timelike particles and obtain the photon-sphere radius, the shadow radius, and the innermost stable circular orbit, demonstrating that both the Lorentz-violating parameter and the dyonic charges can appreciably modify the shadow size and the domain of stable circular motion. In the extended phase space, we derive the thermodynamic quantities and verify the first law of black hole thermodynamics together with the Smarr relation. The system also exhibits a first-order phase transition between small and large black holes, and its phase structure is strongly influenced by the Lorentz-violating parameter and the dyonic charges.
title Dyonic Black Holes in Lorentz-Violating Gravity with a Background Kalb--Ramond Field
topic General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2605.18371