Insights into the $\mathbf{\gamma^{(*)} + N(940)\frac{1}{2}^+ \to \Delta(1700)\frac{3}{2}^{-}}$ transition
L. Albino, G. Paredes-Torres, K. Raya, A. Bashir, J. Segovia

TL;DR
This paper presents a theoretical study of the electromagnetic transition between the nucleon and the $ ext{Delta}(1700)$ resonance using a symmetry-preserving contact interaction within the Dyson-Schwinger equations framework, highlighting the internal baryon structure's impact on transition observables.
Contribution
The work introduces a novel application of a contact interaction model to compute transition form factors and helicity amplitudes for the nucleon to $ ext{Delta}(1700)$ transition, emphasizing internal baryon structure effects.
Findings
Transition form factors are computed and show sensitivity to baryon internal structure.
Helicity amplitudes derived from the form factors provide insights into the transition dynamics.
The model offers analytical benchmarks despite its limitations.
Abstract
We report novel theoretical results for the transition, utilizing a symmetry-preserving treatment of a vectorvector contact interaction (SCI) within the Dyson-Schwinger equations (DSEs) formalism. In this approach, both nucleon, , and 's parity partner, , are treated as quark-diquark composites, with their internal structures governed accordingly by a tractable truncation of the Poincar\'e-covariant Faddeev equation. Nonpointlike quark+quark (diquark) correlations within baryons, which are deeply tied to the processes driving hadron mass generation, are inherently dynamic in the sense that they continually break apart and recombine guided by the Faddeev kernel. For the nucleon, isoscalar-scalar and isovector-axial-vector diquarks dominate,…
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Taxonomy
TopicsParticle physics theoretical and experimental studies · Quantum Chromodynamics and Particle Interactions · Dark Matter and Cosmic Phenomena
