Light-front wave functions of vector mesons in an algebraic model
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Abstract
Inspired by the recent development of an algebraic model which provides an adequate and unified
description of the internal structure of the lowest-lying pseudoscalar mesons, belonging both to the light
quarks sector and to the one of heavy quarks, we perform its first extension to the vector-meson case. The
algebraic model describes the meson’s structure in terms of the spectral density function that appears in a
Nakanishi integral representation of the covariant quark-antiquark bound-state amplitude, i.e., the Bethe-
Salpeter amplitude. We compute the leading-twist light-front wave functions of the ρð770Þ, ϕð1020Þ, J=ψ,
and ϒð1SÞ mesons through their connection with the parton distribution amplitudes. Among the results we
present, the following are of particular interest: (i) transverse light-front wave functions can be obtained
algebraically from the corresponding parton distribution amplitudes, whereas that is not the case for
longitudinal light-front wave functions, which requires an intermediate step where a spectral density
function must be derived from the particular parton distribution amplitude; (ii) the derived spectral density
functions show marked differences between light and heavy vector mesons, the latter being narrower as
compared to the former, and these are also nonpositive definite, although the integral over the entire curve is
larger than zero as expected; and (iii) the longitudinal and transverse light-front wave functions of vector
mesons with light quark content exhibit steep x and p2
⊥ dependence, while those of the J=ψ and ϒð1SÞ
mesons are characterized by narrow distributions in the x range but, comparatively, much more gradual
falloffs with respect to the p2
⊥ range depicted.
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Bibliographic citation
Almeida-Zamora, B., Cobos-Martínez, J. J., Bashir, A., Raya, K., Rodríguez-Quintero, J., & Segovia, J. (2023). Light-front wave functions of vector mesons in an algebraic model. In Physical Review D (Vol. 107, Issue 7). American Physical Society (APS). https://doi.org/10.1103/physrevd.107.074037














