Measurements of Dihadron Correlations Relative to the Event Plane in Au+Au Collisions at $\sqrt{s_{_{\rm NN}}}=200$ GeV
H. Agakishiev, M. M. Aggarwal, Z. Ahammed, A. V. Alakhverdyants, I., Alekseev, J. Alford, B. D. Anderson, C. D. Anson, D. Arkhipkin, G. S., Averichev, J. Balewski, D. R. Beavis, N. K. Behera, R. Bellwied, M. J., Betancourt, R. R. Betts, A. Bhasin, A. K. Bhati, H. Bichsel

TL;DR
This study measures dihadron correlations relative to the event plane in Au+Au collisions at 200 GeV, revealing how jet quenching and flow effects influence particle correlations and their dependence on collision geometry.
Contribution
It provides detailed measurements of dihadron correlations as a function of azimuthal angle relative to the event plane, including flow background subtractions, to better understand medium effects in heavy-ion collisions.
Findings
Away-side correlation is strongly modified and varies with $\
Triangular flow alone does not fully explain the observed correlation structures.
Abstract
Dihadron azimuthal correlations containing a high transverse momentum () trigger particle are sensitive to the properties of the nuclear medium created at RHIC through the strong interactions occurring between the traversing parton and the medium, i.e. jet-quenching. Previous measurements revealed a strong modification to dihadron azimuthal correlations in Au+Au collisions with respect to p+p and d+Au collisions. The modification increases with the collision centrality, suggesting a path-length or energy density dependence to the jet-quenching effect. This paper reports STAR measurements of dihadron azimuthal correlations in mid-central (20-60%) Au+Au collisions at GeV as a function of the trigger particle's azimuthal angle relative to the event plane, . The azimuthal correlation is studied as a function of both the trigger…
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