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Cold nuclear matter physics at forward rapidities from d+Au collisions in PHENIX

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arxiv 1109.2133 v1 pith:QYLMABPT submitted 2011-09-09 nucl-ex

classification nucl-ex
keywords collisionsdi-hadronmeasurementsnucleuspaireffectsnuclearparticles
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abstract

We present measurements by the PHENIX experiment at RHIC of di-hadron pair production in \dAu collisions where the particles in the pair are varied across a wide range of pseudorapidity, out to $\eta = 3.8$. With di-hadrons, varying the $p_T$ and rapidity of the particles in the di-hadron pair allows studying any effects as a function of partonic $x$ in the nucleus. These di-hadron measurements might probe down to parton momentum fractions x $\sim$ $10^{-3}$ in the gold nucleus, where the interesting possibility of observing gluon saturation effects at RHIC is the greatest. Our measurements show that the correlated yield of back-to-back pairs in \dAu collisions is suppressed by up to an order of magnitude relative to \pp collisions, and increases with greater nuclear path thickness and with a selection for lower x in the Au nucleus.

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  1. Description of di-hadron saturation signals within a universal nuclear parton distribution function approach

    nucl-th 2025-01 conditional novelty 6.0 of 10

    Modern nuclear PDF sets can explain most of the forward di-hadron and di-jet suppression in p+A collisions without invoking gluon saturation, and naturally predict an unchanged azimuthal width.

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