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Title: Exclusive production of J / ψ + η c at the B factories Belle and BABAR using the principle of maximum conformality

Journal Article · · Physical Review D

We predict the rate for exclusive double-charmonium production in electron-positron annihilation $${e}^{+}{e}^{{-}}{\rightarrow}J/{\psi}+{{\eta}}_{c}$$ using pQCD and the NRQCD framework for hard, heavy-quarkonium exclusive processes. The cross sections measured at the $$B$$-factories Belle and BABAR at $$\sqrt{s}=10.6\text{ }\text{ }\mathrm{GeV}$$ disagree with the pQCD leading-order predictions by an order of magnitude. The predictions at next-to-leading order are, however, very sensitive to the choice of the renormalization scale, resulting in an apparent discrepancy between the theoretical prediction and the data. We show that this discrepancy can in fact be eliminated by applying the principle of maximum conformality (PMC) to set the renormalization scale. By carefully applying the PMC to different topologies of the annihilation process, one achieves precise pQCD predictions, together with improved perturbative convergence. We also observe that the single-photon-fragmentation QED correction is important, an effect that increases the total cross section by about 10%. The scale-fixed, scheme-independent cross section predicted by the PMC is $${{\sigma}}_{\text{tot}}{|}_{\text{PMC}}=20.3{5}_{{-}3.8}^{+3.5}\text{ }\text{ }\mathrm{fb}$$, where the uncertainties come from the squared average of the errors due to the value of the charm mass and the uncertainty from the quarkonium wave functions at the origin. We find that the typical momentum flow of the process is 2.30 GeV, which explains the guessed choice of 2-3 GeV using conventional scale setting. The scale-fixed $${e}^{+}{e}^{{-}}{\rightarrow}J/{\psi}+{{\eta}}_{c}$$ cross section predicted by the PMC shows agreement with the Belle and BABAR measurements.

Research Organization:
SLAC National Accelerator Lab., Menlo Park, CA (United States); Guizhou Minzu Univ., Guiyang (China); Chongqing Univ. (China)
Sponsoring Organization:
USDOE; National Natural Science Foundation of China (NSFC); Guizhou Provincial Dept. of Education (China); Fundamental Research Funds for the Central Universities (China)
Grant/Contract Number:
AC02-76SF00515; 11705034; 11625520; KY[2017]135; KY[2016]028; 2018CDPTCG0001/3
OSTI ID:
1480370
Alternate ID(s):
OSTI ID: 1490398
Journal Information:
Physical Review D, Journal Name: Physical Review D Vol. 98 Journal Issue: 9; ISSN 2470-0010
Publisher:
American Physical Society (APS)Copyright Statement
Country of Publication:
United States
Language:
English
Citation Metrics:
Cited by: 12 works
Citation information provided by
Web of Science

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