Abstract
Abstract: In this paper we make a further step towards a dispersive description of the hadronic light-by-light (HLbL) tensor, which should ultimately lead to a data-driven evaluation of its contribution to (g − 2)μ. We first provide a Lorentz decomposition of the HLbL tensor performed according to the general recipe by Bardeen, Tung, and Tarrach, generalizing and extending our previous approach, which was constructed in terms of a basis of helicity amplitudes. Such a tensor decomposition has several advantages: the role of gauge invariance and crossing symmetry becomes fully transparent; the scalar coefficient functions are free of kinematic singularities and zeros, and thus fulfill a Mandelstam double-dispersive representation; and the explicit relation for the HLbL contribution to (g − 2)μ in terms of the coefficient functions simplifies substantially. We demonstrate explicitly that the dispersive approach defines both the pion-pole and the pion-loop contribution unambiguously and in a model-independent way. The pion loop, dispersively defined as pion-box topology, is proven to coincide exactly with the one-loop scalar QED amplitude, multiplied by the appropriate pion vector form factors.
| Original language | English |
|---|---|
| Article number | 74 |
| Number of pages | 77 |
| Journal | Journal of High Energy Physics |
| Volume | 2015 |
| Issue number | 9 |
| DOIs | |
| Publication status | Published - 14 Sept 2015 |
Austrian Fields of Science 2012
- 103014 Nuclear physics
- 103012 High energy physics
Keywords
- Chiral Lagrangians
- QCD
- ANOMALOUS MAGNETIC-MOMENT
- VIRTUAL COMPTON-SCATTERING
- PHOTON-PHOTON SCATTERING
- BOX DIAGRAM AMPLITUDE
- MUON G-2
- ANALYTIC PROPERTIES
- LOW-ENERGY
- INVARIANT AMPLITUDES
- FEYNMAN-AMPLITUDES
- VERTEX FUNCTION
Fingerprint
Dive into the research topics of 'Dispersion relation for hadronic light-by-light scattering: theoretical foundations'. Together they form a unique fingerprint.Cite this
- APA
- Author
- BIBTEX
- Harvard
- Standard
- RIS
- Vancouver