Comparison of transverse single-spin asymmetries for forward $\pi^{0}$ production in polarized $pp$, $p\rm{Al}$ and $p\rm{Au}$ collisions at nucleon pair c.m. energy $\sqrt{s_{\mathrm{NN}}}= 200$ GeV
STAR Collaboration: J. Adam, L. Adamczyk, J. R. Adams, J. K. Adkins,, G. Agakishiev, M. M. Aggarwal, Z. Ahammed, I. Alekseev, D. M. Anderson, A., Aparin, E. C. Aschenauer, M. U. Ashraf, F. G. Atetalla, A. Attri, G. S., Averichev, V. Bairathi, K. Barish, A. Behera, R. Bellwied

TL;DR
This study measures the transverse single-spin asymmetries of neutral pions in polarized proton collisions with protons, aluminum, and gold nuclei at 200 GeV, revealing weak nuclear dependence and differences based on pion isolation.
Contribution
First measurement of $A_N$ for forward $b1^0$ production in $pA$ collisions at 200 GeV, comparing nuclear effects and pion isolation dependencies.
Findings
Asymmetries increase with $p_T$ at low $x_F$ and flatten or decrease at higher $x_F$.
The ratio $r(A)$ shows weak dependence on nuclear mass number $A$ with an average of -0.027.
Larger $A_N$ observed for isolated high-$p_T$ $b1^0$ compared to non-isolated ones.
Abstract
The STAR Collaboration reports a measurement of the transverse single-spin asymmetries, , for neutral pions produced in polarized proton collisions with protons (), with aluminum nuclei () and with gold nuclei () at a nucleon-nucleon center-of-mass energy of 200 GeV. Neutral pions are observed in the forward direction relative to the transversely polarized proton beam, in the pseudo-rapidity region . Results are presented for s observed in the STAR FMS electromagnetic calorimeter in narrow Feynman x () and transverse momentum () bins, spanning the range and GeV/. For fixed , the asymmetries are found to rise with increasing transverse momentum. For larger , the asymmetry flattens or falls as increases. Parametrizing the ratio over the…
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