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Loop-level double-copy for massive fermions in the fundamental

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arxiv 2302.14861 v3 pith:4Z647MD4 submitted 2023-02-28 hep-th hep-ph

Loop-level double-copy for massive fermions in the fundamental

classification hep-th hep-ph
keywords amplitudescolor-dualdimensionaldouble-copyfermionsfundamentalheremassive
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We find that unitarity cuts and the duality between color and kinematics are sufficient constraints to bootstrap $D$-dimensional QCD scattering amplitudes starting from three-particle tree-level. Specifically, we calculate tree level amplitudes through six-points, as well as the four-point one-loop correction for massive fermions in the fundamental representation of the gauge group -- constructing a color-dual representation of the latter for the first time. To do so we clarify a prescription for functional kinematic ansatze involving fermionic matter. The advantages of color-dual calculation, familiar from particles in the adjoint, also apply here: only a small number of basis topologies must be constrained via physical information of the theory, and algebraic relations propagate this to a full solution. As all the QCD amplitudes we construct here are color-dual, they trivially generate $D$-dimensional amplitudes in gravitational theories via double-copy construction.

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    hep-ph 2025-11 unverdicted novelty 7.0

    A modular assembly method constructs D-dimensional higher-derivative four-point amplitudes involving fermions from gauge-invariant blocks, color factors, and permutation-invariant scalar polynomials.