Matrix elements of operators in heavy hadron chiral perturbation theory
arXiv:1411.3681 · doi:10.1103/PhysRevD.91.094511
Abstract
We study the light-quark mass and spatial volume dependence of the matrix elements of four-quark operators relevant for the determination of and the lifetime ratios of single- hadrons. To this end, one-loop diagrams are computed in the framework of heavy hadron chiral perturbation theory with partially quenched formalism for three light-quark flavors in the isospin limit; flavor-connected and -disconnected diagrams are carefully analyzed. These calculations include the leading light-quark flavor and heavy-quark spin symmetry breaking effects in the heavy hadron spectrum. Our results can be used in the chiral extrapolation of lattice calculations of the matrix elements to the physical light-quark masses and to infinite volume. To provide insight on such chiral extrapolation, we evaluate the one-loop contributions to the matrix elements containing external , mesons and baryon in the QCD limit, where sea and valence quark masses become equal. In particular, we find that the matrix elements of the flavor-octet operators with external meson receive the contributions solely from connected diagrams in which current lattice techniques are capable of precise determination of the matrix elements. Finite volume effects are at most a few percent for typical lattice sizes and pion masses.
39 pages, 10 figures
References in corpus (6)
- Calculation of the heavy-hadron axial couplings g_1, g_2, and g_3 using lattice QCD
- Enhanced Non-local Power Corrections to the B->X_s+gamma Decay Rate
- Axial couplings and strong decay widths of heavy hadrons
- Matrix elements of the complete set of ΔB = 2 and ΔC = 2 operators in heavy meson chiral perturbation theory
- Axial couplings in heavy hadron chiral perturbation theory at the next-to-leading order
- On the matrix elements of dB=0 operators in the heavy meson decay widths