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Muon-electron backward scattering: a prime example for endpoint singularities in SCET

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arxiv 2205.06021 v2 pith:G6XDWDZ4 submitted 2022-05-12 hep-ph

classification hep-ph
keywords endpointlogarithmsbackwardbesseleffectivefactorizationformulationfunction
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

We argue that energetic muon-electron scattering in the backward direction can be viewed as a template case to study the resummation of large logarithms related to endpoint divergences appearing in the effective-theory formulation of hard-exclusive processes. While it is known since the mid sixties that the leading double logarithms from QED corrections resum to a modified Bessel function on the amplitude level, the modern formulation in Soft-Collinear Effective Theory (SCET) shows a surprisingly complicated and iterative pattern of endpoint-divergent convolution integrals. In contrast to the bottom-quark induced $h \to \gamma\gamma$ decay, for which a renormalized factorization theorem has been proposed recently, we find that rapidity logarithms generate an infinite tower of collinear-anomaly exponents. This can be understood as a generic consequence of the underlying $2\to 2$ kinematics. Using endpoint refactorization conditions for the collinear matrix elements, we show how the Bessel function is reproduced in the effective theory from consistency relations between quantities in a "bare" factorization theorem.

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Cited by 2 Pith papers

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  1. The Simplest B Decay, Precisely

    hep-ph 2026-01 conditional novelty 8.0 of 10

    A complete QCD×QED, next-to-leading-power factorization now gives a percent-level prediction for B⁻→μ⁻ν̄(γ) with all structure-dependent electromagnetic corrections included.

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    hep-ph 2025-08 conditional novelty 7.0 of 10

    The authors present the first analytical two-loop NRQCD amplitude for e+e- to J/psi+eta_c as an expansion in m_c^2/s, with cross-section predictions consistent (within uncertainties) with B-factory data.

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