Measurement of $K_S^0$ and $K^{*0}$ in $p$$+$$p$, $d$$+$Au, and Cu$+$Cu collisions at $\sqrt{s_{_{NN}}}=200$ GeV
A. Adare, S. Afanasiev, C. Aidala, N.N. Ajitanand, Y. Akiba, R., Akimoto, H. Al-Bataineh, J. Alexander, M. Alfred, A. Angerami, K. Aoki, N., Apadula, L. Aphecetche, Y. Aramaki, R. Armendariz, S.H. Aronson, J. Asai, H., Asano, E.T. Atomssa, R. Averbeck, T.C. Awes, B. Azmoun

TL;DR
This study measures $K_S^0$ and $K^{*0}$ meson production in various collision systems at 200 GeV, revealing how their yields are affected by nuclear matter and collision centrality, with suppression observed in central Cu+Cu collisions at intermediate and high transverse momentum.
Contribution
First systematic measurement of $K_S^0$ and $K^{*0}$ production across different collision systems at RHIC energies, analyzing nuclear modification factors and suppression patterns.
Findings
$K_S^0$ and $K^{*0}$ yields are unaffected in $d$+Au collisions, indicating minimal cold nuclear matter effects.
In central Cu+Cu collisions, meson yields are suppressed relative to scaled $p$+$p$ results.
Suppression increases with centrality and transverse momentum, reaching a factor of about 2 at $p_T > 5$ GeV/$c$.
Abstract
The PHENIX experiment at the Relativistic Heavy Ion Collider has performed a systematic study of and meson production at midrapidity in , Au, and CuCu collisions at GeV. The and mesons are reconstructed via their and decay modes, respectively. The measured transverse-momentum spectra are used to determine the nuclear modification factor of and mesons in Au and CuCu collisions at different centralities. In the Au collisions, the nuclear modification factor of and mesons is almost constant as a function of transverse momentum and is consistent with unity showing that cold-nuclear-matter effects do not play a significant role in the measured…
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