Scalarizations of magnetized Reissner-Nordstr\"om black holes induced by parity-violating and parity-preserving interactions
Hao-Jie Lin, Tao Zhu, Jing-Fei Zhang, Xin Zhang

TL;DR
This study investigates how external magnetic fields influence scalarization of magnetized Reissner-Nordström black holes through parity-violating and parity-preserving interactions, revealing different effects on critical couplings and late-time dynamics.
Contribution
It compares the impact of magnetic fields on scalarization thresholds across parity-violating and preserving channels within the same black hole background.
Findings
Magnetic field lowers scalarization threshold in electromagnetic and gravitational Chern--Simons channels.
In the Gauss--Bonnet channel, magnetic field increases critical coupling on the negative branch and decreases it on the positive branch.
Magnetic field modifies late-time dynamics, leading to Melvin-like modes and bounded oscillations with nonlinear couplings.
Abstract
We study spontaneous scalarization of a scalar field in the magnetized Reissner--Nordstr\"om spacetime induced by parity-violating and parity-preserving interactions, represented by couplings to the electromagnetic Chern--Simons, gravitational Chern--Simons, and Gauss--Bonnet invariants, respectively. Working in the decoupling limit, we evolve scalar perturbations in the time domain and determine the critical coupling for the onset of tachyonic instability. This allows us to compare, within the same magnetized background, how the external magnetic field affects scalarization induced by parity-violating and parity-preserving interactions. We find that the magnetic field lowers the scalarization threshold in the electromagnetic and gravitational Chern--Simons channels. In the Gauss--Bonnet channel, by contrast, the effect divided into two branches: on the negative- branch in our…
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