A Direct Algebraic Pathway to Hadronic Observables in the Contact Model

Fuente: arXiv
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Autori principali: Kang, Jiayin, Xing, Zanbin, Chang, Lei
Natura: Preprint
Pubblicazione: 2026
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author Kang, Jiayin
Xing, Zanbin
Chang, Lei
author_facet Kang, Jiayin
Xing, Zanbin
Chang, Lei
contents We present a novel algebraic framework for computing hadron properties directly within the contact interaction model. Utilizing Fierz transformations, the method recasts the Bethe-Salpeter dynamics into equations for a minimal set of \emph{projected amplitudes} for bound-state static properties and form factors, bypassing the conventional need for the meson wave function. This approach is fully demonstrated for the vector meson, enabling the direct extraction of its decay constants and form factors. The formalism provides a more efficient and unified pathway to hadron observables, with clear potential for extension to baryons and more sophisticated interactions.
format Preprint
id arxiv_https___arxiv_org_abs_2601_03514
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle A Direct Algebraic Pathway to Hadronic Observables in the Contact Model
Kang, Jiayin
Xing, Zanbin
Chang, Lei
High Energy Physics - Phenomenology
We present a novel algebraic framework for computing hadron properties directly within the contact interaction model. Utilizing Fierz transformations, the method recasts the Bethe-Salpeter dynamics into equations for a minimal set of \emph{projected amplitudes} for bound-state static properties and form factors, bypassing the conventional need for the meson wave function. This approach is fully demonstrated for the vector meson, enabling the direct extraction of its decay constants and form factors. The formalism provides a more efficient and unified pathway to hadron observables, with clear potential for extension to baryons and more sophisticated interactions.
title A Direct Algebraic Pathway to Hadronic Observables in the Contact Model
topic High Energy Physics - Phenomenology
url https://arxiv.org/abs/2601.03514