Nonperturbative-transverse-momentum effects and evolution in dihadron and direct photon-hadron angular correlations in $p$$+$$p$ collisions at $\sqrt{s}$=510 GeV
A. Adare, C. Aidala, N.N. Ajitanand, Y. Akiba, R. Akimoto, J., Alexander, M. Alfred, V. Andrieux, K. Aoki, N. Apadula, Y. Aramaki, H. Asano,, E.T. Atomssa, T.C. Awes, C. Ayuso, B. Azmoun, V. Babintsev, M. Bai, X. Bai,, N.S. Bandara, B. Bannier, K.N. Barish, S. Bathe, V. Baublis

TL;DR
This paper investigates nonperturbative transverse momentum effects in dihadron and direct photon-hadron correlations in proton-proton collisions at 510 GeV, revealing evolution patterns that differ from other processes like Drell-Yan and SIDIS.
Contribution
It provides the first detailed measurement of nonperturbative transverse momentum evolution in $p+p$ collisions, challenging existing theoretical expectations.
Findings
Gaussian widths decrease with increasing trigger $p_T$
Indicates soft factor does not drive evolution in these processes
Contrasts with Drell-Yan and SIDIS results
Abstract
Dihadron and isolated direct photon-hadron angular correlations are measured in collisions at GeV. Correlations of charged hadrons of GeV/ with mesons of GeV/ or isolated direct photons of GeV/ are used to study nonperturbative effects generated by initial-state partonic transverse momentum and final-state transverse momentum from fragmentation. The nonperturbative behavior is characterized by measuring the out-of-plane transverse momentum component perpendicular to the axis of the trigger particle, which is the high- direct photon or . Nonperturbative evolution effects are extracted from Gaussian fits to the away-side inclusive-charged-hadron yields for different trigger-particle transverse momenta (). The Gaussian widths and root mean square of are…
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