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Journal ArticleDOI

Microscopic description of the nucleon- Delta interaction in the quark cluster model.

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TLDR
By using a nonrelativistic quark cluster model to describe baryonic systems, a nucleon-{Delta} potential is generated from the elementary interaction between constituents, establishing a conceptual difference with meson-exchange models where the interaction is not even well defined.
Abstract
By using a nonrelativistic quark cluster model to describe baryonic systems, we generate a nucleon-{Delta} potential from the elementary interaction between constituents. The basic quark-quark potential used provides, when applied to the nucleon-nucleon system, an adequate description of the scattering phase shifts, the deuteron properties and the nonstrange baryonic spectroscopy. Special attention is paid to the short-range behavior of the interaction and its connection to the quark Pauli principle. This establishes a conceptual difference with meson-exchange models where the interaction, due to the lack of data, is not even well defined.

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Journal ArticleDOI

Quark-model study of few-baryon systems

TL;DR: In this paper, the application of non-relativistic constituent quark models to study one, two and three non-strange baryon systems was reviewed, and the binding energies of three NN*(1440) systems were analyzed.
Journal ArticleDOI

The role of the Δ in nuclear physics

TL;DR: In this paper, the meson-nucleon and meson−Δ coupling constants and form factors have been studied in terms of effective hadronic degrees of freedom, which is a prerequisite for a description of nuclei.
Journal ArticleDOI

Quark Models of the Nucleon–Nucleon Interaction

TL;DR: In this article, a review on the relevance of quark degrees of freedom in the description of the nucleon-nucleon and, in general, of the baryon-baryon interaction is provided.
Journal ArticleDOI

NN* interactions from a constituent quark cluster model

TL;DR: In this paper, the authors explain how baryon-baryon potentials can be derived from constituent quark models (CQM) and give a brief description of the underlying quark model used.