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The Born-Oppenheimer approximation in an effective field theory language

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arxiv 1707.09647 v2 pith:YLO4S5N6 submitted 2017-07-30 hep-ph nucl-thphysics.atom-ph

classification hep-phnucl-thphysics.atom-ph
keywords effectivefieldtheoryapproximationheavymolecularsystemsabove
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abstract

The Born--Oppenheimer approximation is the standard tool for the study of molecular systems. It is founded on the observation that the energy scale of the electron dynamics in a molecule is larger than that of the nuclei. A very similar physical picture can be used to describe QCD states containing heavy quarks as well as light-quarks or gluonic excitations. In this work, we derive the Born--Oppenheimer approximation for QED molecular systems in an effective field theory framework by sequentially integrating out degrees of freedom living at energies above the typical energy scale where the dynamics of the heavy degrees of freedom occurs. In particular, we compute the matching coefficients of the effective field theory for the case of the $H^+_2$ diatomic molecule that are relevant to compute its spectrum up to ${\cal O}(m\alpha^5)$. Ultrasoft photon loops contribute at this order, being ultimately responsible for the molecular Lamb shift. In the effective field theory the scaling of all the operators is homogeneous, which facilitates the determination of all the relevant contributions, an observation that may become useful for high-precision calculations. Using the above case as a guidance, we construct under some conditions an effective field theory for QCD states formed by a color-octet heavy quark-antiquark pair bound with a color-octet light-quark pair or excited gluonic state, highlighting the similarities and differences between the QED and QCD systems. Assuming that the multipole expansion is applicable, we construct the heavy-quark potential up to next-to-leading order in the multipole expansion in terms of nonperturbative matching coefficients to be obtained from lattice QCD.

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Cited by 3 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. $\boldsymbol{\chi_{c1}}(3872)$ and its Partners in the Diabatic Born-Oppenheimer Approximation for QCD

    hep-ph 2026-06 unverdicted novelty 5.0 of 10

    χ_c1(3872) is treated as a bound state in adjoint-meson Born-Oppenheimer potentials within a diabatic model, with calculated spin splittings and decay widths for its multiplet and bottom analogs after tuning to threshold.

  2. Hydrogen-like structures in the strong interaction

    hep-ph 2025-05 reject novelty 4.0 of 10

    T_cc+ is assigned to a compact color-sextet tetraquark by a Born-Oppenheimer quark model, which also predicts stable doubly heavy tetraquarks.

  3. The Pattern of Exotic Hidden-Heavy Hadrons Revealed

    hep-ph 2025-07 reject novelty 3.0 of 10

    Exotic hidden-heavy hadrons are proposed as near-threshold bound states and resonances in Born-Oppenheimer potentials that are repulsive at short range and cross the heavy-hadron-pair threshold.

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