Energy Extraction and Particle Acceleration in String-Inspired Rotating Einstein-Maxwell-Dilaton-Axion Black Hole
Abstract
We study energy extraction and particle acceleration in the rotating Einstein-Maxwell-Dilaton-Axion (EMDA) black hole, focusing on the impact of dilaton hair on near-horizon energetics relative to Kerr. For the Penrose process we derive analytic expressions for the maximum efficiency and show that negative can strongly enhance the ideal gain in the extremal regime (e.g., reaching for ). We then compute the irreducible mass and the corresponding rotationally extractable energy , finding that decreases monotonically as becomes more negative while increases, indicating a larger spin-energy reservoir; at extremality the extracted share from rotation is for EMDA, reducing to the Kerr value at . Kinematic constraints relevant to fragment production are quantified via the Wald and Bardeen--Press--Teukolsky bounds, which are progressively relaxed for more negative . For wave superradiance we obtain the flux balance and the amplification window , with expressed through ; negative modifies and enlarges the parameter region exhibiting negative horizon flux. Finally, we analyse two-particle collisions and derive , showing that the Ba\~nados--Silk--West divergence persists at the horizon when one particle is tuned to the critical angular momentum , while remains finite for generic angular momenta. Overall, dilaton hair in EMDA simultaneously amplifies energy-extraction channels and reshapes the near-horizon thresholds governing high-energy collisions.
Keywords
Cite
@article{arxiv.2603.06273,
title = {Energy Extraction and Particle Acceleration in String-Inspired Rotating Einstein-Maxwell-Dilaton-Axion Black Hole},
author = {Arindam Kumar Chatterjee},
journal= {arXiv preprint arXiv:2603.06273},
year = {2026}
}
Comments
34 pages, 27 figures, 8 tables. A few typos were corrected, along with the addition of a few references