J 2025

Collisions and circular motion of spinning magnetized particles orbiting magnetized Kerr black holes

JUMANIYOZOV, Shokhzod; Saeed Ullah KHAN; Javlon RAYIMBAEV; Inomjon IBRAGIMOV; Ahmadjon ABDUJABBAROV et al.

Basic information

Original name

Collisions and circular motion of spinning magnetized particles orbiting magnetized Kerr black holes

Authors

JUMANIYOZOV, Shokhzod; Saeed Ullah KHAN; Javlon RAYIMBAEV; Inomjon IBRAGIMOV; Ahmadjon ABDUJABBAROV and Zdeněk STUCHLÍK

Edition

Physical Review D, 2025, 2470-0010

Other information

Language

English

Type of outcome

Article in a journal

Field of Study

10308 Astronomy

Country of publisher

United States of America

Confidentiality degree

is not subject to a state or trade secret

References:

Impact factor

Impact factor: 5.300 in 2024

Organization unit

Institute of physics in Opava

UT WoS

001562704100007

EID Scopus

2-s2.0-105021596120

Keywords in English

general relativity;Extended bodies;Penrose process;Dynamics;Energy;Extraction;Accreation;Geodesics;Capture;Charge

Tags

Changed: 29/1/2026 09:13, Mgr. Pavlína Jalůvková

Abstract

In the original language

Studying spinning magnetized particles in strong gravitational and electromagnetic fields is crucial for understanding astrophysical processes near black holes, particularly in the scenarios of millisecond pulsars orbiting supermassive or intermediate-mass black holes. In this work, we analyze the circular motion and collisions of such particles in the close environment of a magnetized Kerr black hole, considering both spincurvature and magnetic dipole interactions. Using the Mathisson-Papapetrou-Dixon (MPD) equations, we derive the effective potential governing the circular motion of spinning magnetized particles and investigate the innermost stable circular orbit (ISCO) under the influence of black hole spin, external magnetic fields, and intrinsic particle spin and magnetic dipole moment. The results reveal how the interaction of the magnetic dipole moment with the external field and spin-curvature interactions significantly alter stable orbits, leading to modifications in accretion dynamics. Furthermore, we explore the center-of-mass energy of such high-energy particle collisions, demonstrating that spin and magnetic interactions can amplify collision energies beyond the standard Ba & ntilde;ados-Silk-West (BSW) process, with implications for the production of ultrahigh-energy cosmic rays and the formation of jets in active galactic nuclei and lowluminosity galaxies. Our findings may provide theoretical predictions that can be tested using observations of compact objects in strong magnetic fields, such as pulsars near supermassive black holes.