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Observation of Correlations between Spin and Transverse Momenta in Back-to-Back Dihadron Production at CLAS12

H. Avakian et al. (CLAS Collaboration)
Phys. Rev. Lett. 130, 022501 – Published 11 January 2023
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Abstract

We report the first measurements of deep inelastic scattering spin-dependent azimuthal asymmetries in back-to-back dihadron electroproduction in the deep inelastic scattering process. In this reaction, two hadrons are produced in opposite hemispheres along the z axis in the virtual photon-target nucleon center-of-mass frame, with the first hadron produced in the current-fragmentation region and the second in the target-fragmentation region. The data were taken with longitudinally polarized electron beams of 10.2 and 10.6 GeV incident on an unpolarized liquid-hydrogen target using the CLAS12 spectrometer at Jefferson Lab. Observed nonzero sinΔϕ modulations in epepπ+X events, where Δϕ is the difference of the azimuthal angles of the proton and pion in the virtual photon and target nucleon center-of-mass frame, indicate that correlations between the spin and transverse momenta of hadrons produced in the target- and current-fragmentation regions may be significant. The measured beam-spin asymmetries provide a first access in dihadron production to a previously unexplored leading-twist spin- and transverse-momentum-dependent fracture function. The fracture functions describe the hadronization of the target remnant after the hard scattering of a virtual photon off a quark in the target particle and provide a new avenue for studying nucleonic structure and hadronization.

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  • Received 10 August 2022
  • Revised 7 November 2022
  • Accepted 7 December 2022

DOI:https://doi.org/10.1103/PhysRevLett.130.022501

Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article’s title, journal citation, and DOI. Funded by SCOAP3.

Published by the American Physical Society

Physics Subject Headings (PhySH)

Nuclear Physics

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Vol. 130, Iss. 2 — 13 January 2023

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Images

  • Figure 1
    Figure 1

    The SIDIS kinematics of back-to-back dihadron production in the center-of-mass frame. The xz plane is defined by the incoming and outgoing lepton with positive z in the direction of the virtual photon. ϕ1 and ϕ2 are defined from the scattering plane to P1 and P2 in an anticlockwise direction.

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  • Figure 2
    Figure 2

    The beam spin asymmetry ALU as a function of Δϕ and integrated over all other kinematics for the entire data set. A clear sin(Δϕ) dependence is observed with small sin(2Δϕ) contributions. Statistical errors only.

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  • Figure 3
    Figure 3

    The measured ALUsinΔϕ asymmetry as a function of PT1PT2. Thin black bars indicate statistical uncertainties and wide gray bars represent systematic uncertainties.

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  • Figure 4
    Figure 4

    The measured weighted ALUsinΔϕ asymmetry as a function of x. Thin black bars indicate statistical uncertainties and wide gray bars represent systematic uncertainties.

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  • Figure 5
    Figure 5

    The measured weighted ALUsinΔϕ asymmetry as a function of z1. Thin black bars indicate statistical uncertainties and wide gray bars represent systematic uncertainties.

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  • Figure 6
    Figure 6

    The measured weighted ALUsinΔϕ asymmetry as a function of ζ2. Thin black bars indicate statistical uncertainties and wide gray bars represent systematic uncertainties.

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