Litcius/Paper detail

Plasma-photon interaction in curved spacetime: Formalism and quasibound states around nonspinning black holes

Enrico Cannizzaro, Andrea Caputo, Laura Sberna, Paolo Pani

2021Physical review. D/Physical review. D.29 citationsDOIOpen Access PDF

Abstract

We investigate the linear dynamics of an electromagnetic field propagating in curved spacetime in the presence of plasma. The dynamical equations are generically more involved and richer than the effective Proca equation adopted as a model in previous work. We discuss the general equations and focus on the case of a cold plasma in the background of a spherically symmetric black hole, showing that the system admits plasma-driven, quasibound electromagnetic states that are prone to become superradiantly unstable when the black hole rotates. The quasibound states are different from those of the Proca equation and have some similarities with the case of a massive scalar field, suggesting that the linear instability can be strongly suppressed compared to previous estimates. Our framework provides the first step toward a full understanding of the plasma-photon interactions around astrophysical black holes.

Topics & Concepts

PhysicsSpacetimeClassical mechanicsPlasmaBlack hole (networking)Formalism (music)Scalar fieldInstabilityElectromagnetic fieldPhotonRotating black holeQuantum electrodynamicsQuantum mechanicsAngular momentumComputer networkRouting protocolComputer scienceLink-state routing protocolMusicalArtVisual artsRouting (electronic design automation)Astrophysical Phenomena and ObservationsPulsars and Gravitational Waves ResearchAstrophysics and Cosmic Phenomena