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Unique Access to u-Channel Physics: Exclusive Backward-Angle Omega Meson Electroproduction.

Authors :
Li WB
Huber GM
Blok HP
Gaskell D
Horn T
Semenov-Tian-Shansky K
Pire B
Szymanowski L
Laget JM
Aniol K
Arrington J
Beise EJ
Boeglin W
Brash EJ
Breuer H
Chang CC
Christy ME
Ent R
Gibson EF
Holt RJ
Jin S
Jones MK
Keppel CE
Kim W
King PM
Kovaltchouk V
Liu J
Lolos GJ
Mack DJ
Margaziotis DJ
Markowitz P
Matsumura A
Meekins D
Miyoshi T
Mkrtchyan H
Niculescu I
Okayasu Y
Pentchev L
Perdrisat C
Potterveld D
Punjabi V
Reimer PE
Reinhold J
Roche J
Roos PG
Sarty A
Smith GR
Tadevosyan V
Tang LG
Tvaskis V
Volmer J
Vulcan W
Warren G
Wood SA
Xu C
Zheng X
Source :
Physical review letters [Phys Rev Lett] 2019 Nov 01; Vol. 123 (18), pp. 182501.
Publication Year :
2019

Abstract

Backward-angle meson electroproduction above the resonance region, which was previously ignored, is anticipated to offer unique access to the three quark plus sea component of the nucleon wave function. In this Letter, we present the first complete separation of the four electromagnetic structure functions above the resonance region in exclusive ω electroproduction off the proton, ep→e^{'}pω, at central Q^{2} values of 1.60, 2.45  GeV^{2}, at W=2.21  GeV. The results of our pioneering -u≈-u_{min} study demonstrate the existence of a unanticipated backward-angle cross section peak and the feasibility of full L/T/LT/TT separations in this never explored kinematic territory. At Q^{2}=2.45  GeV^{2}, the observed dominance of σ_{T} over σ_{L}, is qualitatively consistent with the collinear QCD description in the near-backward regime, in which the scattering amplitude factorizes into a hard subprocess amplitude and baryon to meson transition distribution amplitudes: universal nonperturbative objects only accessible through backward-angle kinematics.

Details

Language :
English
ISSN :
1079-7114
Volume :
123
Issue :
18
Database :
MEDLINE
Journal :
Physical review letters
Publication Type :
Academic Journal
Accession number :
31763910
Full Text :
https://doi.org/10.1103/PhysRevLett.123.182501