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Maximum observable blueshift from circular equatorial Kerr orbiters

Delilah E. A. Gates, Shahar Hadar, and Alexandru Lupsasca
Phys. Rev. D 102, 104041 – Published 16 November 2020

Abstract

The region of spacetime near the event horizon of a black hole can be viewed as a deep potential well at large gravitational redshift relative to distant observers. However, matter orbiting in this region travels at relativistic speeds and can impart a significant Doppler shift to its electromagnetic emission, sometimes resulting in a net observed blueshift at infinity. Thus, a black hole broadens the line emission from monochromatic sources in its vicinity into a smoothly decaying “red wing”—whose flux vanishes at large redshift—together with a “blue blade” that retains finite flux up to a sharp edge corresponding to the maximum observable blueshift. In this paper, we study the blue blade produced by isotropic monochromatic emitters on circular equatorial orbits around a Kerr black hole, and we obtain simple relations describing how the maximum blueshift encodes black hole spin and inclination. We find that small values of the maximum blueshift yield an excellent probe of inclination, while larger values provide strong constraints on spin or inclination in terms of the other. These results bear direct relevance to ongoing and future observations aiming to infer the angular momenta of supermassive black holes from the broadening of their surrounding line emission.

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  • Received 21 September 2020
  • Accepted 23 October 2020

DOI:https://doi.org/10.1103/PhysRevD.102.104041

© 2020 American Physical Society

Physics Subject Headings (PhySH)

Gravitation, Cosmology & Astrophysics

Authors & Affiliations

Delilah E. A. Gates1,*, Shahar Hadar1,†, and Alexandru Lupsasca2,3,‡

  • 1Center for the Fundamental Laws of Nature, Harvard University, Cambridge, Massachusetts 02138, USA
  • 2Princeton Gravity Initiative, Princeton University, Princeton, New Jersey 08544, USA
  • 3Society of Fellows, Harvard University, Cambridge, Massachusetts 02138, USA

  • *dgates@g.harvard.edu
  • shaharhadar@g.harvard.edu
  • lupsasca@princeton.edu

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Issue

Vol. 102, Iss. 10 — 15 November 2020

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