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Hadron physics with functional methods
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We give a pedagogical introduction to hadron spectroscopy and structure studies using functional methods. We explain the basic features of Dyson-Schwinger, Bethe-Salpeter and Faddeev equations, which are employed to calculate the spectra of mesons, baryons and four-quark states. We discuss dynamical mass generation as a consequence of the spontaneous breaking of chiral symmetry, which is intertwined with the emergence of the light pions as Goldstone bosons of QCD. We highlight the importance of diquark correlations in the baryon sector, while for four-quark states such as the light scalar mesons and heavy exotics the dominant two-body clusters are typically mesons. We conclude with a brief discussion of hadron matrix elements like electromagnetic form factors and how vector-meson dominance is an automatic outcome of functional equations.
Forward citations
Cited by 3 Pith papers
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Spectra of light and heavy mesons with $J \le 5$ in a relativistic Bethe-Salpeter approach
First J=4,5 meson Bethe-Salpeter tensor bases plus exploratory rainbow-ladder spectra and Regge trajectories from light through bottom quarkonia.
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Getting a handle on correlation functions
A pedagogical guide to constructing symmetry-adapted tensor bases and momentum variables for n-point correlation functions in Euclidean quantum field theory.
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A beginner's guide to functional methods in particle physics
A pedagogical review showing how Dyson-Schwinger, 3PI, and Bethe-Salpeter equations can be chained together to compute glueball masses in pure Yang-Mills theory, matching lattice QCD.
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