English

Electric Fields and Chiral Magnetic Effect in Cu + Au Collisions

Nuclear Theory 2015-02-17 v2 High Energy Physics - Phenomenology Nuclear Experiment

Abstract

The non-central Cu + Au collisions can create strong out-of-plane magnetic fields and in-plane electric fields. By using the HIJING model, we study the general properties of the electromagnetic fields in Cu + Au collisions at 200 GeV and their impacts on the charge-dependent two-particle correlator γq1q2=<cos(ϕ1+ϕ22ψRP)>\gamma_{q_1q_2}=<\cos(\phi_1+\phi_2-2\psi_{RP})> (see main text for definition) which was used for the detection of the chiral magnetic effect (CME). Compared with Au + Au collisions, we find that the in-plane electric fields in Cu + Au collisions can strongly suppress the two-particle correlator or even reverse its sign if the lifetime of the electric fields is long. Combining with the expectation that if γq1q2\gamma_{q_1q_2} is induced by elliptic-flow driven effects we would not see such strong suppression or reversion, our results suggest to use Cu + Au collisions to test CME and understand the mechanisms that underlie γq1q2\gamma_{q_1q_2}.

Keywords

Cite

@article{arxiv.1411.2733,
  title  = {Electric Fields and Chiral Magnetic Effect in Cu + Au Collisions},
  author = {Wei-Tian Deng and Xu-Guang Huang},
  journal= {arXiv preprint arXiv:1411.2733},
  year   = {2015}
}

Comments

V1: 7 pages, 8 figures. V2: Add 2 new figures. Published version