Convergence in charmonium structure: light-front wave functions from basis light-front quantization and Dyson-Schwinger equations

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Hauptverfasser: Cao, Xianghui, Li, Yang, Shi, Chao, Vary, James P., Wang, Qun
Format: Preprint
Veröffentlicht: 2025
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author Cao, Xianghui
Li, Yang
Shi, Chao
Vary, James P.
Wang, Qun
author_facet Cao, Xianghui
Li, Yang
Shi, Chao
Vary, James P.
Wang, Qun
contents We present a systematic comparison of charmonium light-front wave functions obtained through two complementary non-perturbative approaches: Basis Light-Front Quantization (BLFQ) and Dyson-Schwinger equations (DSE). Key observables include the charge form factor, gravitational form factors, light-cone distribution amplitudes, decay constants, and two-photon transition form factors. Despite their distinct theoretical foundations and model parameters, the predictions from BLFQ and DSE exhibit remarkable agreement across all observables. This convergence validates both frameworks for studying charmonium structure and highlights the complementary strengths of Hamiltonian-based (BLFQ) and Lagrangian-based (DSE) methods in addressing non-perturbative QCD.
format Preprint
id arxiv_https___arxiv_org_abs_2507_17330
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Convergence in charmonium structure: light-front wave functions from basis light-front quantization and Dyson-Schwinger equations
Cao, Xianghui
Li, Yang
Shi, Chao
Vary, James P.
Wang, Qun
High Energy Physics - Phenomenology
High Energy Physics - Theory
Nuclear Theory
We present a systematic comparison of charmonium light-front wave functions obtained through two complementary non-perturbative approaches: Basis Light-Front Quantization (BLFQ) and Dyson-Schwinger equations (DSE). Key observables include the charge form factor, gravitational form factors, light-cone distribution amplitudes, decay constants, and two-photon transition form factors. Despite their distinct theoretical foundations and model parameters, the predictions from BLFQ and DSE exhibit remarkable agreement across all observables. This convergence validates both frameworks for studying charmonium structure and highlights the complementary strengths of Hamiltonian-based (BLFQ) and Lagrangian-based (DSE) methods in addressing non-perturbative QCD.
title Convergence in charmonium structure: light-front wave functions from basis light-front quantization and Dyson-Schwinger equations
topic High Energy Physics - Phenomenology
High Energy Physics - Theory
Nuclear Theory
url https://arxiv.org/abs/2507.17330