Gravitational Wave Backreaction in f(R,G) Gravity
Farzad Milani
Abstract
We develop a complete framework for gravitational wave propagation and backreaction in f(R,G) modified gravity. Using a scalar-tensor formulation with two auxiliary fields, we derive the effective energy-momentum tensor for high-frequency gravitational waves, extending the Isaacson formalism to incorporate the coupled dynamics of the two scalar degrees of freedom arising from the Ricci scalar and Gauss-Bonnet terms. Applying our formalism to the concrete model f(R,G) = R + αR2 + βG with dimensionless coupling β = βHinf2, we identify three observational signatures: (i) a stochastic background ΩGW(f) too faint for direct detection; (ii) a frequency-dependent phase shift Δϕ(f) β f detectable for β 10-9 via matched filtering of binary inspirals; and (iii) amplitude damping δh/h β f (1+z) reaching the percent level for β 10-8, constrainable by multi-messenger standard sirens. These results show that f(R,G) gravity makes testable predictions for next-generation observatories, improving constraints on the Gauss-Bonnet coupling by 28 orders of magnitude over current bounds. The framework developed here provides a foundation for studying modified gravity through gravitational wave observations.
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