THE EFFECT OF GRAVITATION ON THE POLARIZATION STATE OF A LIGHT RAY

  • Ghosh T
  • Sen A
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Abstract

In the present work, detailed calculations have been carried out on the rotation of the polarization vector of an electromagnetic wave due to the presence of a gravitational field of a rotating body. This has been done using the general expression of Maxwell’s equation in curved spacetime. Considering the far-field approximation (i.e., the impact parameter is greater than the Schwarzschild radius and rotation parameter), the amount of rotation of the polarization vector as a function of impact parameter has been obtained for a rotating body (considering Kerr geometry). The present work shows that the rotation of the polarization vector cannot be observed in the case of Schwarzschild geometry. This work also calculates the rotational effect when considering prograde and retrograde orbits for the light ray. Although the present work demonstrates the effect of rotation of the polarization vector, it confirms that there would be no net polarization of an electromagnetic wave due to the curved spacetime geometry in a Kerr field.

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Ghosh, T., & Sen, A. K. (2016). THE EFFECT OF GRAVITATION ON THE POLARIZATION STATE OF A LIGHT RAY. The Astrophysical Journal, 833(1), 82. https://doi.org/10.3847/1538-4357/833/1/82

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