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arXiv:2003.12650·v2·High Energy Physics — Phenomenology

Lensing Mechanism Meets Small- Physics: Single Transverse Spin Asymmetry in and Collisions

Yuri V. Kovchegov🇺🇸 · M. Gabriel Santiago🇺🇸

Abstract

We calculate the single transverse spin asymmetry (STSA) in polarized proton-proton () and polarized proton-nucleus () collisions () generated by a partonic lensing mechanism. The polarized proton is considered in the quark-diquark model while its interaction with the unpolarized target is calculated using the small-/saturation approach, which includes multiple rescatterings and small- evolution. The phase required for the asymmetry is caused by a final-state gluon exchange between the quark and diquark, as is standard in the lensing mechanism of Brodsky, Hwang and Schmidt. Our calculation combines the lensing mechanism with small- physics in the saturation framework. The expression we obtain for the asymmetry of the produced quarks has the following properties: (i) The asymmetry is generated by the dominant elastic scattering contribution and suppressed inelastic contribution (with the number of quark colors); (ii) The asymmetry grows or oscillates with the produced quark's transverse momentum until the momentum reaches the saturation scale , and then only falls off as for larger momenta; (iii) The asymmetry decreases with increasing atomic number of the target for below or near , but is independent of for significantly above . We discuss how these properties may be qualitatively consistent with the data on published by the PHENIX collaboration and with the preliminary data on reported by the STAR collaboration.

Comments: 23 pages, 10 figures

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