Splittings of low-lying charmonium masses at the physical point
Carleton DeTar, Andreas S. Kronfeld, Song-haeng Lee, Daniel Mohler,, James N. Simone

TL;DR
This paper provides high-precision lattice QCD calculations of low-lying charmonium mass splittings, comparing results with experimental data and thoroughly analyzing systematic uncertainties.
Contribution
The study introduces an improved variational analysis and continuum extrapolation for charmonium mass splittings using lattice QCD at the physical point.
Findings
Results agree well with experimental values for key splittings.
Systematic uncertainties are comprehensively analyzed.
Continuum extrapolation is performed within the Fermilab interpretation.
Abstract
We present high-precision results from lattice QCD for the mass splittings of the low-lying charmonium states. For the valence charm quark, the calculation uses Wilson-clover quarks in the Fermilab interpretation. The gauge-field ensembles are generated in the presence of up, down, and strange sea quarks, based on the improved staggered (asqtad) action, and gluon fields, based on the one-loop, tadpole-improved gauge action. We use five lattice spacings and two values of the light sea quark mass to extrapolate the results to the physical point. An enlarged set of interpolating operators is used for a variational analysis to improve the determination of the energies of the ground states in each channel. We present and implement a continuum extrapolation within the Fermilab interpretation, based on power-counting arguments, and thoroughly discuss all sources of systematic uncertainty. We…
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