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Calculation of the anomalous $\gamma \pi ^* \to \pi \pi $ form factor

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arxiv hep-ph/9510284 v1 pith:NXF7DQ5N submitted 1995-10-12 hep-ph nucl-th

classification hep-phnucl-th
keywords anomalousfactorformcalculatedelectromagneticgammapionpoint
verification ladder T0 review T1 audit T2 compute T3 formal

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abstract

The form factor for the anomalous process $\gamma \pi ^* \to \pi \pi$, $F^{3\pi}(s,t,u)$, is calculated as a phenomenological application of the QCD Dyson-Schwinger equations. The chiral-limit value dictated by the electromagnetic, anomalous chiral Ward identity, $F^{3\pi}(0,0,0)= e N_c/(12\pi^2 f_\pi^3)$, is reproduced, {\it independent} of the details of the modelling of the gluon and quark 2-point Schwinger functions. Using a parametrisation of the dressed $u$-$d$ quark 2-point Schwinger function that provides a good description of pion observables, such as $\pi$-$\pi$ scattering-lengths and the electromagnetic pion form factor, $F^{3\pi}(s,t,u)$ is calculated on a kinematic range that proposed experiments plan to explore. Our result confirms the general trend of other calculations; i.e., a monotonic increase with $s$ at fixed $t$ and $u$, but is uniformly larger and exhibits a more rapid rise with $s$.

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Cited by 1 Pith paper

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  1. Extracting the chiral anomaly from $e^+e^-\to 3\pi$

    hep-ph 2025-04 conditional novelty 6.0 of 10

    A dispersive fit to e+e−→3π data yields F3π = 33.1(1.7) GeV^-3, consistent with the chiral anomaly prediction at the 5% level.

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