Separated Response Functions in Exclusive, Forward $\pi^{\pm}$ Electroproduction on Deuterium
G.M. Huber, H.P. Blok, C. Butuceanu, D. Gaskell, T. Horn, D.J. Mack,, D. Abbott, K. Aniol, H. Anklin, C. Armstrong, J. Arrington, K. Assamagan, S., Avery, O.K. Baker, B. Barrett, E.J. Beise, C. Bochna, W. Boeglin, E.J. Brash,, H. Breuer, C.C. Chang, N. Chant, M.E. Christy

TL;DR
This study measures separated response functions in exclusive $ o$ electroproduction of $ o$ on deuterium, revealing how meson-nucleon and quark-gluon degrees of freedom transition at different energy scales and testing pole dominance assumptions.
Contribution
It provides new experimental data on separated response functions in $ o$ electroproduction, analyzing their evolution with $Q^2$ and t, and tests the pole dominance hypothesis for extracting the pion form factor.
Findings
$\sigma_L$ shows a clear pion pole signature at small -t.
$\sigma_T$ remains relatively flat versus t.
The $ o/ o$ ratio for transverse photons follows a universal curve with t, indicating quark knockout.
Abstract
Background: Measurements of forward exclusive meson production at different squared four-momenta of the exchanged virtual photon, , and at different four-momentum transfer, t, can be used to probe QCD's transition from meson-nucleon degrees of freedom at long distances to quark-gluon degrees of freedom at short scales. Ratios of separated response functions in and electroproduction are particularly informative. The ratio for transverse photons may allow this transition to be more easily observed, while the ratio for longitudinal photons provides a crucial verification of the assumed pole dominance, needed for reliable extraction of the pion form factor from electroproduction data. Method: Data were acquired with 2.6-5.2 GeV electron beams and the HMS+SOS spectrometers in Jefferson Lab Hall C, at central values of 0.6, 1.0, 1.6 GeV at W=1.95 GeV, and…
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