PaperPanorama

Nuclear Theory·nucl-th

Friday·June 5, 2015

4 papers2 primary·2 cross-listed

  1. 03

    [Submitted on 3 Jun 2015] (cross-list from hep-th)

    The anomalous transport of axial charge: topological vs non-topological fluctuations

    Ioannis Iatrakis🇺🇸 · Shu Lin🇺🇸 · Yi Yin🇺🇸

    Axial charge imbalance is an essential ingredient in novel effects associated with chiral anomaly such as chiral magnetic effects (CME). In a non-Abelian plasma with chiral fermions, local axial charge can be generated a) by topological fluctuations which would create domains with non-zero winding number b) by conventional non-topological thermal fluctuations. We provide a holographic evaluations of medium's response to dynamically generated axial charge density in hydrodynamic limit and examine if medium's response depends on the microscopic origins of axial charge imbalance. We show a local domain with non-zero winding number would induce a non-dissipative axial current due to chiral anomaly. We illustrate holographically that a local axial charge imbalance would be damped out with the damping rate related to Chern-Simon diffusive constant. By computing chiral magnetic current in the presence of dynamically generated axial charge density, we found that the ratio of CME current over the axial charge density is independent of the origin of axial charge imbalance in low frequency and momentum limit. Finally, a stochastic hydrodynamic equation of the axial charge is formulated by including both types of fluctuations.

    Comments:
    30 pages, version accepted in JHEP
    Subjects:
    High Energy Physics — Theory (hep-th); High Energy Physics — Phenomenology (hep-ph); Nuclear Theory (nucl-th)
    arXiv:
    1506.01384 [pdf]
    JHEP(2015)·27 citations
  2. 04

    [Submitted on 3 Jun 2015] (cross-list from hep-ph)

    Dispersion relation for hadronic light-by-light scattering: theoretical foundations

    Gilberto Colangelo🇨🇭 · Martin Hoferichter🇩🇪 · Massimiliano Procura🇦🇹 · Peter Stoffer🇩🇪

    In this paper we make a further step towards a dispersive description of the hadronic light-by-light (HLbL) tensor, which should ultimately lead to a data-driven evaluation of its contribution to . We first provide a Lorentz decomposition of the HLbL tensor performed according to the general recipe by Bardeen, Tung, and Tarrach, generalizing and extending our previous approach, which was constructed in terms of a basis of helicity amplitudes. Such a tensor decomposition has several advantages: the role of gauge invariance and crossing symmetry becomes fully transparent; the scalar coefficient functions are free of kinematic singularities and zeros, and thus fulfill a Mandelstam double-dispersive representation; and the explicit relation for the HLbL contribution to in terms of the coefficient functions simplifies substantially. We demonstrate explicitly that the dispersive approach defines both the pion-pole and the pion-loop contribution unambiguously and in a model-independent way. The pion loop, dispersively defined as pion-box topology, is proven to coincide exactly with the one-loop scalar QED amplitude, multiplied by the appropriate pion vector form factors.

    Comments:
    59 pages, 11 figures. Draws on and substantially extends arXiv:1412.5171 [hep-ph] and arXiv:1402.7081 [hep-ph]. Version accepted for publication in JHEP
    Subjects:
    High Energy Physics — Phenomenology (hep-ph); High Energy Physics — Experiment (hep-ex); High Energy Physics — Lattice (hep-lat); Nuclear Theory (nucl-th)
    arXiv:
    1506.01386 [pdf]
    JHEP(2015)·328 citations

Affiliations

first authorsco-authorsvia INSPIRE