Inverse scattering at fixed energy in de Sitter-Reissner-Nordstr\"om black holes
Abstract
In this paper, we consider massless Dirac fields propagating in the outer region of de Sitter-Reissner-Nordstr\"om black holes. We show that the metric of such black holes is uniquely determined by the partial knowledge of the corresponding scattering matrix S(λ) at a fixed energy λ 0. More precisely, we consider the partial wave scattering matrices S(λ,n) (here λ 0 is the fixed energy and n ∈ * denotes the angular momentum) defined as the restrictions of the full scattering matrix on a well chosen basis of spin-weighted spherical harmonics. We prove that the mass M, the square of the charge Q2 and the cosmological constant of a dS-RN black hole (and thus its metric) can be uniquely determined from the knowledge of either the transmission coefficients T(λ, n), or the reflexion coefficients R(λ, n) (resp. L(λ, n)), for all n ∈ L where L is a subset of * that satisfies the M\"untz condition Σn ∈ L 1n = +∞. Our main tool consists in complexifying the angular momentum n and in studying the analytic properties of the "unphysical" scattering matrix S(λ,z) in the complex variable z. We show in particular that the quantities 1T(λ,z), R(λ,z)T(λ,z) and L(λ,z)T(λ,z) belong to the Nevanlinna class in the region \z ∈ , \ Re(z) >0 \ for which we have analytic uniqueness theorems at our disposal. Eventually, as a by-product of our method, we obtain reconstrution formulae for the surface gravities of the event and cosmological horizons of the black hole which have an important physical meaning in the Hawking effect.
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