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    Phase structure of scalarized black holes in Einstein-scalar-Gauss-Bonnet gravity

    Carlos Herdeiro1,4,*, Hyat Huang2,†, Jutta Kunz3,‡, Meng-Yun Lai2,§, Eugen Radu1,∥, and De-Cheng Zou2,¶

    • *Contact author: herdeiro@ua.pt
    • †Contact author: hyat@mail.bnu.edu.cn
    • ‡Contact author: jutta.kunz@uni-oldenburg.de
    • §Contact author: mengyunlai@jxnu.edu.cn
    • ∥Contact author: eugen.radu@ua.pt
    • Contact author: dczou@jxnu.edu.cn

    Phys. Rev. D 113, 124046 – Published 15 June, 2026

    DOI: https://doi.org/10.1103/4k1l-jzvz

    Abstract

    We revisit scalarized black holes in Einstein-scalar-Gauss-Bonnet gravity and analyze the thermodynamic phase transition between the Schwarzschild solution of general relativity and scalarized black holes. Restricting to spherically symmetric configurations, we investigate several classes of scalar-Gauss-Bonnet coupling functions. For the simplest quadratic coupling that triggers spontaneous scalarization, the scalarized solutions are thermodynamically disfavored and no phase transition occurs. For an exponential coupling, the phase structure depends strongly on the coupling parameter, allowing for the absence of a transition, a continuous second-order transition, or a discontinuous first-order transition. For couplings leading to purely nonlinear scalarization, we find either a first-order transition or no transition. These results reveal a rich phase structure of scalarized black holes controlled by the scalar-Gauss-Bonnet coupling.

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