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Gravitational Scattering and Beyond from Extreme Mass Ratio Effective Field Theory

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arxiv 2406.14770 v2 pith:ZX7QP2EN submitted 2024-06-20 hep-th gr-qchep-ph

classification hep-thgr-qchep-ph
keywords particlefieldscatteringclassicaleffectiveparticlesbackgroundexpansion
verification ladder T0 review T1 audit T2 compute T3 formal
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We explore a recently proposed effective field theory describing electromagnetically or gravitationally interacting massive particles in an expansion about their mass ratio, also known as the self-force (SF) expansion. By integrating out the deviation of the heavy particle about its inertial trajectory, we obtain an effective action whose only degrees of freedom are the lighter particle together with the photon or graviton, all propagating in a Coulomb or Schwarzschild background. The 0SF dynamics are described by the usual background field method, which at 1SF is supplemented by a "recoil operator" that encodes the wobble of the heavy particle, and similarly computable corrections appearing at 2SF and higher. Our formalism exploits the fact that the analytic expressions for classical backgrounds and particle trajectories encode dynamical information to all orders in the couplings, and from them we extract multiloop integrands for perturbative scattering. As a check, we study the two-loop classical scattering of scalar particles in electromagnetism and gravity, verifying known results. We then present new calculations for the two-loop classical scattering of dyons, and of particles interacting with an additional scalar or vector field coupling directly to the lighter particle but only gravitationally to the heavier particle.

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Cited by 4 Pith papers

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