Spin structure of heavy-quark hybrids
Nora Brambilla, Wai Kin Lai, Jorge Segovia, Jaume Tarr\'us Castell\`a, and Antonio Vairo

TL;DR
This paper investigates the spin structure of heavy-quark hybrids in QCD using effective field theory, revealing novel features and fitting nonperturbative parameters to lattice QCD data for charmonium and bottomonium sectors.
Contribution
It provides the first detailed analysis of the full spin structure of heavy-quark hybrids up to order 1/m^2 using nonrelativistic effective field theory.
Findings
Unveiled unique spin characteristics of heavy-quark hybrids.
Fitted nonperturbative coefficients to lattice QCD data.
Extended results from charmonium to bottomonium hybrids.
Abstract
A unique feature of quantum chromodynamics (QCD), the theory of strong interactions, is the possibility for gluonic degrees of freedom to participate in the construction of physical hadrons, which are color singlets, in an analogous manner to valence quarks. Hadrons with no valence quarks are called glueballs, while hadrons where both gluons and valence quarks combine to form a color singlet are called hybrids. The unambiguous identification of such states among the experimental hadron spectrum has been thus far not possible. Glueballs are particularly difficult to establish experimentally since the lowest lying ones are expected to strongly mix with conventional mesons. On the other hand, hybrids should be easier to single out because the set of quantum numbers available to their lowest excitations may be exotic, i.e., not realized in conventional quark-antiquark systems. Particularly…
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