Quantum Field Theory of Black Hole Perturbations with Backreaction V. Beyond Second Order Perturbations
Jonas Neuser, Thomas Thiemann

TL;DR
This paper develops a gauge-invariant, non-perturbative approach to black hole perturbations beyond second order, incorporating backreaction effects and enabling exact solutions of the constraints, advancing understanding of higher-order perturbations.
Contribution
It introduces a non-perturbative, gauge-invariant framework for higher-order black hole perturbations using a phase space approach, allowing exact constraint solutions without series truncation.
Findings
Formulated a non-perturbative, gauge-invariant method for third-order perturbations.
Accounted for backreaction effects between observables.
Provided a technical advantage with exact, polynomial constraint solutions.
Abstract
Black hole perturbation theory beyond second order is not well understood because typically one defines the meaning of gauge invariance order by order which is ambiguous. In this series of works we therefore developed a new approach which disentangles the meaning of gauge invariance from the perturbative order. It is based on the reduced phase space approach to the Hamiltonian formulation of General Relativity and constructs a non-perturbative, albeit implicit, formulation of the dynamics of only observables that are gauge invariant to all orders. To obtain explicit expressions, perturbation theory is then employed, but now only perturbations are considered that are gauge invariant to all orders. There are both spherically symmetric and non-symmetric observables and the formulation takes the (perturbative) backreaction between those fully into account. The formulation has access to both…
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Taxonomy
TopicsBlack Holes and Theoretical Physics · Noncommutative and Quantum Gravity Theories · Quantum and Classical Electrodynamics
