TY - JOUR
T1 - Improved perturbative QCD approach to the bottomonium spectrum
AU - Recksiegel, S.
PY - 2003/1/9
Y1 - 2003/1/9
N2 - Recently it has been shown that the gross structure of the bottomonium spectrum is reproduced reasonably well within the nonrelativistic bound state theory based on perturbative QCD. In that calculation, however, the fine splittings and the (Formula presented) level splittings are predicted to be considerably narrower than the corresponding experimental values. We investigate the bottomonium spectrum within a specific framework based on perturbative QCD, which incorporates all the corrections up to (Formula presented) and (Formula presented) respectively, in the computations of the fine splittings and the (Formula presented) splittings. We find that the agreement with the experimental data for the fine splittings improves drastically due to an enhancement of the wave functions close to the origin as compared to the Coulomb wave functions. The agreement of the (Formula presented) splittings with the experimental data also becomes better. We find that natural scales of the fine splittings and the (Formula presented) splittings are larger than those of the bound states themselves. On the other hand, the predictions of the level spacings between consecutive principal quantum numbers depend rather strongly on the scale (Formula presented) of the operator (Formula presented) The agreement of the whole spectrum with the experimental data is much better than the previous predictions when (Formula presented) for (Formula presented) There seems to be a phenomenological preference for some suppression mechanism for the above operator.
AB - Recently it has been shown that the gross structure of the bottomonium spectrum is reproduced reasonably well within the nonrelativistic bound state theory based on perturbative QCD. In that calculation, however, the fine splittings and the (Formula presented) level splittings are predicted to be considerably narrower than the corresponding experimental values. We investigate the bottomonium spectrum within a specific framework based on perturbative QCD, which incorporates all the corrections up to (Formula presented) and (Formula presented) respectively, in the computations of the fine splittings and the (Formula presented) splittings. We find that the agreement with the experimental data for the fine splittings improves drastically due to an enhancement of the wave functions close to the origin as compared to the Coulomb wave functions. The agreement of the (Formula presented) splittings with the experimental data also becomes better. We find that natural scales of the fine splittings and the (Formula presented) splittings are larger than those of the bound states themselves. On the other hand, the predictions of the level spacings between consecutive principal quantum numbers depend rather strongly on the scale (Formula presented) of the operator (Formula presented) The agreement of the whole spectrum with the experimental data is much better than the previous predictions when (Formula presented) for (Formula presented) There seems to be a phenomenological preference for some suppression mechanism for the above operator.
UR - http://www.scopus.com/inward/record.url?scp=0037287916&partnerID=8YFLogxK
U2 - 10.1103/PhysRevD.67.014004
DO - 10.1103/PhysRevD.67.014004
M3 - Article
AN - SCOPUS:0037287916
SN - 1550-7998
VL - 67
JO - Physical Review D - Particles, Fields, Gravitation and Cosmology
JF - Physical Review D - Particles, Fields, Gravitation and Cosmology
IS - 1
ER -