Worldline Formalism, Eikonal Expansion and the Classical Limit of Scattering Amplitudes
Siddarth Ajith, Yuchen Du, Ravisankar Rajagopal, Diana Vaman

TL;DR
This paper demonstrates the equivalence of the eikonal and worldline quantum field theory methods for calculating classical scattering observables, enabling systematic extraction of classical contributions and confirming eikonal phase exponentiation.
Contribution
It establishes the formal equivalence between the eikonal and worldline QFT approaches and introduces a diagrammatic organization that simplifies classical limit calculations.
Findings
Eikonal and WQFT methods are mathematically equivalent.
Worldline formalism allows direct extraction of classical contributions.
Confirmed the exponentiation of the eikonal phase.
Abstract
We revisit the fundamentals of two different methods for calculating classical observables: the eikonal method, which is a scattering amplitude-based method, and the worldline quantum field theory (WQFT) method. The latter has been considered an extension of the worldline effective field theory. We show that the eikonal and WQFT methods are equivalent and that calculations can be translated freely between them. Concretely, we focus on 2-into-2 scattering processes mediated by massless force carriers. On the one hand, taking the classical limit of the QFT scattering amplitude leads to the eikonal method. On the other hand, since in the classical limit the scattering particles are almost on-shell throughout the scattering process, the worldline, a first quantized formalism, is the most efficient framework to study the scattering amplitude. This is an alternate but equivalent formalism…
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Taxonomy
TopicsRelativity and Gravitational Theory · Cosmology and Gravitation Theories
