Abstract

Multihadron operators are crucial for reliably extracting the masses of excited states lying above multihadron thresholds in lattice QCD Monte Carlo calculations. The construction of multihadron operators with significant coupling to the lowest-lying multihadron states of interest involves combining single hadron operators of various momenta. The design and implementation of large sets of spatially-extended single-hadron operators of definite momentum and their combinations into two-hadron operators are described. The single hadron operators are all assemblages of gauge-covariantly-displaced, smeared quark fields. Group-theoretical projections onto the irreducible representations of the symmetry group of a cubic spatial lattice are used in all isospin channels. Tests of these operators on ${24}^{3}\ifmmode\times\else\texttimes\fi{}128$ and ${32}^{3}\ifmmode\times\else\texttimes\fi{}256$ anisotropic lattices using a stochastic method of treating the low-lying modes of quark propagation which exploits Laplacian Heaviside quark-field smearing are presented. The method provides reliable estimates of all needed correlations, even those that are particularly difficult to compute, such as $\ensuremath{\eta}\ensuremath{\eta}\ensuremath{\rightarrow}\ensuremath{\eta}\ensuremath{\eta}$ in the scalar channel, which involves the subtraction of a large vacuum expectation value. A new glueball operator is introduced, and the evaluation of the mixing of this glueball operator with a quark-antiquark operator, $\ensuremath{\pi}\ensuremath{\pi}$, and $\ensuremath{\eta}\ensuremath{\eta}$ operators is shown to be feasible.

Highlights

  • Multi-hadron operators are crucial for reliably extracting the masses of excited states lying above multi-hadron thresholds in lattice quantum chroI T modynamics (QCD) Monte Carlo calculations

  • Multi-hadron operators are crucial for reliably extracting the masses of excited states lying above multihadron thresholds in lattice QCD Monte Carlo calculations

  • Multi-hadron operators with significant coupling to the low-lying multi-hadron states of interest can be obtained by combining single-hadron operators of various momenta

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Summary

SINGLE-HADRON OPERATORS OF DEFINITE MOMENTUM

The little groups associated with our choices of reference momentum directions are listed in Tables III, IV, V, and VI To describe both mesons and baryons, we need the single-valued and double-valued (spinorial) irreps of these groups. We use the index i to indicate all other quantum numbers and identifying information All of these single-hadron operators constructed as described above transform under a group element (R, b) of the space group Oh1 , in which x → Rx + b, according to. Since we plan to obtain Monte Carlo estimates of the complete correlation matrices of operators including all allowed flavor combinations, the use of linear superpositions which transform irreducibly under SU (3) flavor is TABLE XV: Flavor structure of the elemental hadron annihiliation operators we use. We construct singlehadron operators that transform under an isospin rotation Rτ according to URτ BpIIΛ3λSi(t) UR† τ

I3 S pΛλi
IMPLEMENTATION DETAILS
TESTS OF THE SINGLE-HADRON OPERATORS
TWO-HADRON OPERATORS OF DEFINITE MOMENTUM
A NEW GLUEBALL OPERATOR
CONCLUSION
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