Boosted Kerr Black Hole in the Presence of Plasma †



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Figure 1. Phase-waves and observer C with 4-velocity Vµ.
Then, using this approach, he was able to obtain the frequency ω and speed u of the wave relative to the observer (later, the observer C will be the medium. This means that both the frequency and

velocity of the wave will be measured at the instantaneous rest frame of the plasma.), which are given by the relations [5]




(2)
and
(3)

Here h is the Planck’s constant and c is the speed of light. Equations (2) and (3) play an important roll in the optics theory developed by J.L. Synge. Hence, using the Hamiltonian formalism, he shows that the variational principle

(4)
along with the condition
(5)

leads to the following system of differential equations [5]


and (6)
where the affine parameter λ changes along the light trajectory. Note that the scalar function W( , ) has been defined from the relationship between the phase velocity (The phase velocity is defined as the minimum value of

where u’ is the velocity of a fictitious particle riding on the wavefront relative to a time-like world-line C (intersecting the wave) of an observer with 4-velocity (see [5] for details).) u and the 4-vector of the photon momentum (given by Equation (3)) so that the Hamiltonian formalism can be considered. Thus, Equation (6) describes the photons’ trajectories in a gravitational field. Now, to include the effect of plasma in the equations of motion, G .S. Bisnovatyi-Kogan and O. Y. Tsupko consider a static inhomogeneous plasma with a refraction index n that depends on the space location xi. Mathematically, this refraction index is given by [6,8]
and (7)
where e and m are the electron charge and mass respectively, ωe is the plasma frequency, and N(xi ) is the electron concentration in an inhomogeneous plasma. The photon frequency ω(xi ) depends on the space coordinates x1 , x2 , x3 due to gravitational redshift [8]. It is known that for a static medium in a static gravitational field, the photon energy can be expressed as [5,6,8]
(8)

Therefore, after using Equation (5) the function W reduces to



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