English

Spinning particles, axion radiation, and the classical double copy

High Energy Physics - Theory 2018-06-06 v2 General Relativity and Quantum Cosmology High Energy Physics - Phenomenology

Abstract

We extend the perturbative double copy between radiating classical sources in gauge theory and gravity to the case of spinning particles. We construct, to linear order in spins, perturbative radiating solutions to the classical Yang-Mills equations sourced by a set of interacting color charges with chromomagnetic dipole spin couplings. Using a color-to-kinematics replacement rule proposed earlier by one of the authors, these solutions map onto radiation in a theory of interacting particles coupled to massless fields that include the graviton, a scalar (dilaton) ϕ\phi and the Kalb-Ramond axion field BμνB_{\mu\nu}. Consistency of the double copy imposes constraints on the parameters of the theory on both the gauge and gravity sides of the correspondence. In particular, the color charges carry a chromomagnetic interaction which, in d=4d=4, corresponds to a gyromagnetic ratio equal to Dirac's value g=2g=2. The color-to-kinematics map implies that on the gravity side, the bulk theory of the fields (ϕ,gμν,Bμν)(\phi,g_{\mu\nu},B_{\mu\nu}) has interactions which match those of dd-dimensional `string gravity,' as is the case both in the BCJ double copy of pure gauge theory scattering amplitudes and the KLT relations between the tree-level SS-matrix elements of open and closed string theory.

Keywords

Cite

@article{arxiv.1712.09250,
  title  = {Spinning particles, axion radiation, and the classical double copy},
  author = {Walter D. Goldberger and Jingping Li and Siddharth G. Prabhu},
  journal= {arXiv preprint arXiv:1712.09250},
  year   = {2018}
}

Comments

10+5 pages, LaTeX, 2 figures. v2:Fixed typos and added minor clarifications