English

Nucleon momentum distribution in deuteron and other nuclei within the light-front dynamics method

Nuclear Theory 2009-11-07 v2

Abstract

The relativistic light-front dynamics (LFD) method has been shown to give a correct description of the most recent data for the deuteron monopole and quadrupole charge form factors obtained at the Jefferson Laboratory for elastic electron-deuteron scattering for six values of the squared momentum transfer between 0.66 and 1.7 (GeV/c)2^{2}. The good agreement with the data is in contrast with the results of the existing non-relativistic approaches. In this work we firstly make a complementary test of the LFD applying it to calculate another important characteristic, the nucleon momentum distribution n(q)n(q) of the deuteron using six invariant functions fif_{i} (i=1,...,6)(i=1,...,6) instead of two (SS- and DD-waves) in the nonrelativistic case. The comparison with the yy-scaling data shows the decisive role of the function f5f_{5} which at qq\geq 500 MeV/c exceeds all other ff-functions (as well as the SS- and DD-waves) for the correct description of n(q)n(q) of the deuteron in the high-momentum region. Comparison with other calculations using SS- and DD-waves corresponding to various nucleon-nucleon potentials is made. Secondly, using clear indications that the high-momentum components of n(q)n(q) in heavier nuclei are related to those in the deuteron, we develop an approach within the natural orbital representation to calculate n(q)n(q) in (A,Z)(A,Z)-nuclei on the basis of the deuteron momentum distribution. As examples, n(q)n(q) in 4^{4}He, 12^{12}C and 56^{56}Fe are calculated and good agreement with the yy-scaling data is obtained.

Cite

@article{arxiv.nucl-th/0106044,
  title  = {Nucleon momentum distribution in deuteron and other nuclei within the light-front dynamics method},
  author = {A. N. Antonov and M. Gaidarov and M. V. Ivanov and D. N. Kadrev and G. Z. Krumova and P. E. Hodgson and H. V. von Geramb},
  journal= {arXiv preprint arXiv:nucl-th/0106044},
  year   = {2009}
}

Comments

16 pages, 6 figures, corrected, to appear in Phys. Rev. C in February 2002