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Pair invariant mass to isolate background in the search for the chiral magnetic effect in Au+Au collisions at sNN\sqrt{s_{_{\rm NN}}}= 200 GeV

Published 9 Jun 2020 in nucl-ex, hep-ex, and nucl-th | (2006.05035v2)

Abstract: Quark interactions with topological gluon configurations can induce local chirality imbalance and parity violation in quantum chromodynamics, which can lead to the chiral magnetic effect (CME) -- an electric charge separation along the strong magnetic field in relativistic heavy-ion collisions. The CME-sensitive azimuthal correlator observable (Δγ\Delta\gamma) is contaminated by background arising, in part, from resonance decays coupled with elliptic anisotropy (v2v_{2}). We report here differential measurements of the correlator as a function of the pair invariant mass (minvm_{\rm inv}) in 20-50\% centrality Au+Au collisions at s<em>NN\sqrt{s_{<em>{\rm NN}}}= 200 GeV by the STAR experiment at RHIC. Strong resonance background contributions to Δγ\Delta\gamma are observed. At large m</em>invm</em>{\rm inv} where this background is significantly reduced, the Δγ\Delta\gamma value is found to be significantly smaller. An event-shape-engineering technique is deployed to determine the v2v_{2} background shape as a function of minvm_{\rm inv}. We extract a v2v_2-independent and minvm_{\rm inv}-averaged signal Δγsig\Delta\gamma_{\rm sig} = (0.03 ±\pm 0.06 ±\pm 0.08) ×10<sup>−4\times10<sup>{-4}, or (2±4±5)%(2\pm4\pm5)\% of the inclusive $\Delta\gamma(m_{\rm inv}&gt;0.4$ GeV/c<sup>2c<sup>2)</sup>=(1.58±0.02±0.02)×10<sup>−4</sup> =(1.58 \pm 0.02 \pm 0.02) \times10<sup>{-4}, within pion pTp_{T} = 0.2 - 0.8~\gevc and averaged over pseudorapidity ranges of $-1 &lt; \eta &lt; -0.05$ and $0.05 &lt; \eta &lt; 1$. This represents an upper limit of 0.23×10<sup>−40.23\times10<sup>{-4}, or 15%15\% of the inclusive result, at 95%95\% confidence level for the minvm_{\rm inv}-integrated CME contribution.

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