Lattice Evidence for Bound Heavy Tetraquarks

We investigate the possibility of qq '$ \bar {Q}\bar {Q}' $ tetraquark bound states using n f = 2 + 1 lattice QCD with pion masses ≃ 164, 299 and 415 MeV. Two types of lattice interpolating operator are chosen, reflecting first diquarkantidiquark and second meson-meson structure. Performin...

Ausführliche Beschreibung

Gespeichert in:
Bibliographische Detailangaben
Veröffentlicht in:EPJ Web of Conferences 2019, Vol.202, p.6013
Hauptverfasser: Francis, Anthony, Hudspith, Renwick J., Lewis, Randy, Maltman, Kim
Format: Artikel
Sprache:eng
Schlagworte:
Online-Zugang:Volltext
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
Beschreibung
Zusammenfassung:We investigate the possibility of qq '$ \bar {Q}\bar {Q}' $ tetraquark bound states using n f = 2 + 1 lattice QCD with pion masses ≃ 164, 299 and 415 MeV. Two types of lattice interpolating operator are chosen, reflecting first diquarkantidiquark and second meson-meson structure. Performing variational analysis using these operators and their mixings, we determine the ground and first excited states from the lattice correlators. Using non-relativistic QCD to simulate the bottom quarks and the Tsukuba formulation of relativistic heavy quarks for charm quarks, we study the ud $ \bar {b}\bar {b} $, ℓs $ \bar {b}\bar {b} $ as well as ud $ \bar {c}\bar {b} $, channels with ℓ= u , d. In the case of the ud $ \bar {b}\bar {b} $ and ℓ s $ \bar {b}\bar {b} $ channels unambiguous signals for J P =1 + tetraquarks are found with binding energies 189(10) and 98(7) MeV below the corresponding free two-meson thresholds at the physical point. These tetraquarks are therefore strong-interaction stable, implying they are stable under strong as well as electromagnetic interactions while they can decay weakly. So far these are the first exotic hadrons predicted to have this feature. Further evidence for binding is found in the ud $ \bar {c}\bar {b} $ channel, whereby the binding energy broadly straddles the electromagnetic stability threshold. Studying further the quark mass dependence we vary the heavy quark mass in ud $ \bar {Q}\bar {Q} $, ℓ s $ \bar {Q}\bar {Q} $ as well as ud $ \bar {Q}\bar {b} $, ℓ s $ \bar {Q}\bar {b} $ between roughly 0.7 and 6.3 times the bottom quark mass. The observed mass dependence of these four flavor channels closely follows a behaviour argued from phenomenological considerations of the heavy baryon spectrum.
ISSN:2100-014X
2101-6275
2100-014X
DOI:10.1051/epjconf/201920206013