Measurements of the chiral magnetic effect with background isolation in 200 GeV Au+Au collisions at STAR
arXiv:1807.09925 · doi:10.1016/j.nuclphysa.2018.08.035
Abstract
Using two novel methods, pair invariant mass () and comparative measurements with respect to reaction plane () and participant plane (), we isolate the possible chiral magnetic effect (CME) from backgrounds in 200 GeV Au+Au collisions at STAR. The invariant mass method identifies the resonance background contributions, coupled with the elliptic flow (), to the charge correlator CME observable (). At high mass ( GeV/) where resonance contribution is small, we obtain the average magnitude. In the low mass region ( GeV/), resonance peaks are observed in (). An event shape engineering (ESE) method is used to model the background shape in to extract the potential CME signal at low . In the comparative method, the is assessed by spectator neutrons measured by ZDC, and the by the 2-harmonic event plane measured by the TPC. The is stronger along and weaker along ; in contrast, the magnetic field, mainly from spectator protons, is weaker along and stronger along . As a result, the measured with respect to and contain different amounts of CME and background, and can thus determine these two contributions. It is found that the possible CME signals with background isolation by these two novel methods are small, on the order of a few percent of the inclusive measurements.
4 pages, 4 figures, Quark Matter 2018 conference proceeding
References in corpus (5)
- The Chiral Magnetic Effect
- Charge conservation in RHIC and contributiuons to local parity violation observables
- Importance of isobar density distributions on the chiral magnetic effect search
- Search for the Chiral Magnetic Effect in Relativistic Heavy-Ion Collisions
- Chiral magnetic effect search in p+Au, d+Au and Au+Au collisions at RHIC
Cited by in corpus (16)
- Anomalous chiral transports and spin polarization in heavy-ion collisions
- Chiral magnetic effect reveals the topology of gauge fields in heavy-ion collisions
- Experimental searches for the chiral magnetic effect in heavy-ion collisions
- Chiral Magnetic Effects in Nuclear Collisions
- Impact of magnetic-field fluctuations on measurements of the chiral magnetic effect in collisions of isobaric nuclei
- Two- and three-particle nonflow contributions to the chiral magnetic effect measurement by spectator and participant planes in relativistic heavy ion collisions
- Search for the chiral magnetic effect in collisions between two isobars with deformed and neutron-rich nuclear structures
- Revisit the Chiral Magnetic Effect Expectation in Isobaric Collisions at the Relativistic Heavy Ion Collider
- Search for CME in U+U and Au+Au collisions in STAR with different approaches of handling backgrounds
- A novel invariant mass method to isolate resonance backgrounds from the chiral magnetic effect
- Decipher the correlator in search for the chiral magnetic effect in relativistic heavy ion collisions
- Accessing Topological Fluctuations of Gauge Fields with Chiral Magnetic Effect
- Neural Unfolding of the Chiral Magnetic Effect in Heavy-Ion Collisions
- The effect of electric and chiral magnetic conductivities on azimuthally fluctuating electromagnetic fields and observables in isobar collisions
- Back-to-back relative-excess observable in search for the chiral magnetic effect
- Re-examining the premise of isobaric collisions and a novel method to measure the chiral magnetic effect