From deep inelastic scattering to heavy-flavor semi-leptonic decays: Total rates into multi-hadron final states from lattice QCD
arXiv:1704.08993 · doi:10.1103/PhysRevD.96.094513
Abstract
We present a new technique for extracting decay and transition rates into final states with any number of hadrons. The approach is only sensitive to total rates, in which all out-states with a given set of QCD quantum numbers are included. For processes involving photons or leptons, differential rates with respect to the non-hadronic kinematics may also be extracted. Our method involves constructing a finite-volume Euclidean four-point function, whose corresponding spectral function measures the decay and transition rates in the infinite-volume limit. This requires solving the inverse problem of extracting the spectral function from the correlator and also necessitates a smoothing procedure so that a well-defined infinite-volume limit exists. Both of these steps are accomplished by the Backus-Gilbert method and, as we show with a numerical example, reasonable precision can be expected in cases with multiple open decay channels. Potential applications include nucleon structure functions and the onset of the deep inelastic scattering regime, as well as semi-leptonic and decay rates.
21 pages, 6 figures, MITP/17-031, v2: fixed minor typos, included additional references
References in corpus (7)
- A relativistic, model-independent, three-particle quantization condition
- Electrical conductivity and charge diffusion in thermal QCD from the lattice
- Scalar mesons in a finite volume
- decay amplitude in the continuum limit
- Multichannel one-to-two transition amplitudes in a finite volume
- Spectroscopy of doubly-charmed baryons from lattice QCD
- Extraction of the resonance parameters at finite times