Export citation

Export citation

Choose format for download:

Download Citation

    Light deflection in axially symmetric stationary spacetimes filled with a moving medium

    Christian Pfeifer1,*, Barbora Bezděková2,3,4,†, and Oleg Yu. Tsupko1,‡

    • 1ZARM, University of Bremen, 28359 Bremen, Germany
    • 2Department of Physics, Faculty of Natural Sciences, University of Haifa, Haifa 3498838, Israel
    • 3Haifa Research Center for Theoretical Physics and Astrophysics, University of Haifa, Haifa 3498838, Israel
    • 4Faculty of Mathematics and Physics, Institute of Theoretical Physics, Charles University, 18000 Prague, Czech Republic

    • *Contact author: christian.pfeifer@zarm.uni-bremen.de
    • †Contact author: bbezdeko@campus.haifa.ac.il
    • ‡Contact author: tsupkooleg@gmail.com

    Phys. Rev. D 112, 104064 – Published 24 November, 2025

    DOI: https://doi.org/10.1103/n7jc-x388

    Abstract

    The deflection of light rays near gravitating objects can be influenced not only by gravity itself but also by the surrounding medium. Analytical studies of such effects are possible within the geometrical optics approximation, where the medium introduces additional light bending due to refraction. These studies typically assume a cold nonmagnetized plasma, for which light propagation is independent of the medium’s velocity. In this paper, we extend the analysis to the general case of dispersive refractive media in motion and study its influence on light deflection. We consider an axially symmetric stationary spacetime filled with a moving medium, motivated by the interplay between rotational effects originating from the spacetime and those induced by the medium’s motion. We begin by analyzing light deflection in the equatorial plane of a rotating object in the presence of a radially moving and rotating medium. Assuming a specific form of the refractive index enables a fully analytic treatment. In the particular cases of either pure radial or pure rotational motion, we obtain explicit expressions for the deflection angle. Next, we analyze the case of a slowly moving medium and identify two particularly interesting results. First, we show that to the first order in the medium’s velocity, the radial motion does not affect the light deflection. Second, assuming slow rotation of the gravitating object, we demonstrate that the black hole rotation and the medium motion can produce equivalent observational signatures. We find the quantitative condition under which these effects compensate each other. This relation becomes particularly clear for a Kerr black hole, discussed as an example.

    Physics Subject Headings (PhySH)

    Authorization Required

    We need you to provide your credentials before accessing this content.

    References (Subscription Required)

    Outline

    Information

    Sign In to Your Journals Account

    Filter

    Filter

    Article Lookup

    Enter a citation