Next-to-Leading Order (NLO) Perturbative Effects in QCD Sum-Rule Analyses of Light Tetraquark Systems: A Case Study in the Scalar-Isoscalar Channel
B.A. Cid-Mora, T.G. Steele

TL;DR
This paper investigates the impact of next-to-leading order (NLO) perturbative corrections on QCD sum-rule analyses of light tetraquark systems, demonstrating improved reliability and robustness in mass predictions, especially using sum-rule ratios.
Contribution
It provides a systematic study of NLO effects in scalar-isoscalar light tetraquark sum-rules, highlighting their significance and the robustness of ratio-based mass predictions despite slow convergence.
Findings
NLO effects significantly influence individual sum-rules but are mitigated in ratios.
Mass predictions for the sigma state align with four-quark interpretations.
Sum-rule ratios remain robust against NLO corrections despite slow perturbative convergence.
Abstract
QCD sum-rule mass predictions for tetraquark states provide insights on the interpretations and internal structure of experimentally-observed exotic mesons. However, the overwhelming majority of tetraquark QCD sum-rule analyses have been performed at leading order (LO), which raises questions about the underlying theoretical uncertainties from higher-loop corrections. The impact of next-to-leading order (NLO) perturbative effects are systematically examined in scalar () isoscalar light-quark tetraquark systems where comprehensive LO sum-rule analyses have been performed and NLO perturbative corrections to the correlators have previously been calculated. Using the scalar-isoscalar state as a detailed case study to illustrate the differences between LO and NLO analyses, it is shown that NLO effects in individual Laplace sum-rules are numerically significant and have an…
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Taxonomy
TopicsQuantum Chromodynamics and Particle Interactions · Particle physics theoretical and experimental studies · Physics of Superconductivity and Magnetism
