D (K π)27 at the SU(3)-flavour-symmetric point I: Methodology and strong phase determination
Matthew Black, Felix Erben, Maxwell T. Hansen, Fabian Joswig, Nelson Pitanga Lachini, Rajnandini Mukherjee, Srijit Paul, Antonin Portelli
Abstract
We present part one of an SU(3)-flavour-symmetric lattice QCD calculation of the amplitude for a D-meson decaying to a Kπ final state in the 27-dimensional irreducible representation of the flavour symmetry group, denoted (Kπ)27. The Wilson--clover gauge ensembles used in this work, generated by the OpenLat collaboration, are tuned such that Mπ= MK ≈ 410\,MeV. Using the distillation framework, we construct a matrix of Euclidean correlation functions from pairs of single-hadron operators projected to definite spatial momentum. Solving a generalised eigenvalue problem yields the finite-volume energy spectrum that is used to determine the scattering phase shift from threshold up to 4 Mπ≈ 1640 \,MeV, which sits below but plausibly within reach of MD SU(3) 1900\,MeV. The calculation is performed across three lattice spacings, and we apply two strategies in which the continuum limit is taken at different stages of the computation: (i) on the extracted scattering parameters and (ii) on the finite-volume energies at fixed physical volume before extracting the scattering parameters. We find consistent results across these methods for the scattering phase shift as a function of the centre-of-mass energy, δ27(E cm). Taking a scattering-length-only parametrisation, we infer a value for the strong phase of the weak decay, δ27(MD SU(3))=-38.4(2.4). We further describe the methodology for using the same operator basis to compute three-point correlation functions to extract (Kπ)27| HW| D, for the tree-level effective weak Hamiltonian HW, and for relating such finite-volume matrix elements to the full decay amplitude. The complete analysis leading to the latter will be presented in a forthcoming manuscript.
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