Light-front wavefunctions of mesons by design
Abstract
We develop a mechanism to build the light-front wavefunctions (LFWFs) of meson bound states on a small-sized basis function representation. Unlike in a standard Hamiltonian formalism, the Hamiltonian in this method is implicit, and the information of the system is carried directly by the functional form and adjustable parameters of the LFWFs. In this work, we model the LFWFs for four charmonium states, ηcηc, J/ψJ/ψ, ψ′ψ′, and ψ(3770)ψ(3770) as superpositions of orthonormal basis functions. We choose the basis functions as eigenfunctions of an effective Hamiltonian, which has a longitudinal confining potential in addition to the transverse confining potential from light-front holographic QCD. We determine the basis function parameters and superposition coefficients by employing both guidance from the nonrelativistic description of the meson states and the experimental measurements of the meson decay widths. With the obtained wavefunctions, we study the features of those meson states, including charge radii and parton distribution functions. We use the J/ψJ/ψ LFWF to calculate the meson production in diffractive deep inelastic scattering and ultra-peripheral heavy-ion collisions, and the ηcηc LFWF to calculate its diphoton transition form factor. Both results show good agreement with experiments. The obtained LFWFs have simple-functional forms and can be readily used to predict additional experimental observables.
Main Authors
Format
Articles
Research article
Published
2022
Series
Subjects
Publication in research information system
Publisher
Springer
The permanent address of the publication
https://urn.fi/URN:NBN:fi:jyu-202211235326Käytä tätä linkitykseen.
Review status
Peer reviewed
ISSN
1434-6044
DOI
https://doi.org/10.1140/epjc/s10052-022-10988-5
Language
English
Published in
European Physical Journal C
Citation
- Li, M., Li, Y., Chen, G., Lappi, T., & Vary, J. P. (2022). Light-front wavefunctions of mesons by design. European Physical Journal C, 82(11), Article 1045. https://doi.org/10.1140/epjc/s10052-022-10988-5
Funder(s)
Academy of Finland
European Commission
European Commission
European Commission
Funding program(s)
Akatemiahanke, SA
ERC European Research Council, H2020
RIA Research and Innovation Action, H2020
ERC Advanced Grant
Academy Project, AoF
ERC European Research Council, H2020
RIA Research and Innovation Action, H2020
ERC Advanced Grant
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Additional information about funding
M. Li and T. Lappi are supported by the Academy of Finland, project 321840 and under the European Union’s Horizon 2020 research and innovation programme by the European Research Council (ERC, Grant agreement no. ERC-2015-CoG-681707 and ERC-2018-AdG-835105) and by the STRONG-2020 project (Grant agreement no. 824093). Y. Li, G. Chen and J. P. Vary are supported in part by the US Department of Energy (DOE) under Grant no. DE-FG02-87ER40371.
Copyright© The Author(s) 2022