Abstract
AbstractIn this paper the Feynman Green function for Maxwell’s theory in curved space-time is studied by using the Fock–Schwinger–DeWitt asymptotic expansion; the point-splitting method is then applied, since it is a valuable tool for regularizing divergent observables. Among these, the stress-energy tensor is expressed in terms of second covariant derivatives of the Hadamard Green function, which is also closely linked to the effective action; therefore one obtains a series expansion for the stress-energy tensor. Its divergent part can be isolated, and a concise formula is here obtained: by dimensional analysis and combinatorics, there are two kinds of terms: quadratic in curvature tensors (Riemann, Ricci tensors and scalar curvature) and linear in their second covariant derivatives. This formula holds for every space-time metric; it is made even more explicit in the physically relevant particular cases of Ricci-flat and maximally symmetric spaces, and fully evaluated for some examples of physical interest: Kerr and Schwarzschild metrics and de Sitter space-time.
Funder
Università degli Studi di Napoli Federico II
Publisher
Springer Science and Business Media LLC
Subject
General Physics and Astronomy
Reference33 articles.
1. B.S. DeWitt, The Global Approach to Quantum Field Theory (Oxford University Press, Oxford, 2003)
2. S.W. Hawking, Black hole explosions? Nature 248, 30–31 (1974)
3. S.W. Hawking, Particle creation by black holes. Commun. Math. Phys. 43, 199–220 (1975)
4. W.G. Unruh, Notes on black-hole evaporation. Phys. Rev. D 14, 870–892 (1976)
5. N.D. Birrell, P.C.W. Davies, Quantum Fields in Curved Space (Cambridge University Press, Cambridge, 1982)