4.4 Article

Exclusive radiative decays of W and Z bosons in QCD factorization

Journal

JOURNAL OF HIGH ENERGY PHYSICS
Volume -, Issue 4, Pages -

Publisher

SPRINGER
DOI: 10.1007/JHEP04(2015)101

Keywords

Rare Decays; Effective field theories; Resummation; Renormalization Group

Funding

  1. U.S. National Science Foundation [PHY-0757868]
  2. United States-Israel Binational Science Foundation (BSF) [2010221]
  3. European Research Council (ERC) [EFT4LHC]
  4. Cluster of Excellence Precision Physics, Fundamental Interactions and Structure of Matter (PRISMA) [EXC 1098]
  5. German Federal Ministry for Education and Research (BMBF) [05H12UME]
  6. DFG Graduate School Symmetry Breaking in Fundamental Interactions [GRK 1581]

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We present a detailed theoretical analysis of very rare, exclusive hadronic decays of the electroweak gauge bosons V = W,Z from first principles of QCD. Our main focus is on the radiative decays V -> M gamma, in which M is a pseudoscalar or vector meson. At leading order in an expansion in powers of Lambda(QCD)/m(V) the decay amplitudes can be factorized into convolutions of calculable hard-scattering coefficients with the leading-twist light-cone distribution amplitude of the meson M. Power corrections to the decay rates arise first at order (Lambda(QCD)/m(V))(2). They can be estimated in terms of higher-twist distribution amplitudes and are predicted to be tiny. We include one-loop O(alpha(s)) radiative corrections to the hard-scattering coefficients and perform the resummation of large logarithms as (alpha(s) ln(m(V)(2)/mu(2)(0))(n) (with mu(0) similar to 1 GeV a typical hadronic scale) to all orders in perturbation theory. Evolution effects have an important impact both numerically and conceptually, since they reduce the sensitivity to poorly determined hadronic parameters. We present detailed numerical predictions and error estimates, which can serve as benchmarks for future precision measurements. We also present an exploratory study of the weak radiative decays Z -> MW. Some of the decay modes studied here have branching ratios large enough to be accessible in the high-luminosity run of the LHC. Many of them can be measured with high accuracy at a future lepton collider. This will provide stringent tests of the QCD factorization formalism and enable novel searches for new physics.

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