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Area of Science:

  • High Energy Physics
  • Quantum Chromodynamics
  • Particle Physics

Background:

  • Quantum nature of gluons within hadronic wave functions is complex.
  • Bose-Einstein correlations (BEC) describe the enhanced probability of identical particles having the same quantum state.
  • Understanding these correlations is key to probing the fundamental structure of hadrons.

Purpose of the Study:

  • To investigate the manifestation of quantum gluon correlations in high-energy scattering experiments.
  • To explore the potential of using Bose-Einstein correlations to probe gluon properties.
  • To analyze the impact of nuclear targets on these quantum effects.

Main Methods:

  • Theoretical calculations of diffractive dijet plus a third jet production in deep inelastic scattering.
  • Analysis of azimuthal dependence of particle production.
  • Comparison between electron-proton and electron-nucleus collision scenarios.

Main Results:

  • Identified a peak in azimuthal dependence originating from Bose-Einstein enhancement of gluons.
  • Demonstrated that nuclear targets amplify the relative strength of this peak.
  • Showcased the feasibility of probing these correlations in future high-luminosity electron-ion collider experiments.

Conclusions:

  • Bose-Einstein correlations provide a measurable signature of quantum gluon effects in hadronic wave functions.
  • Nuclear targets offer an advantage in experimentally observing gluon BEC.
  • Future electron-ion colliders will be crucial for detailed measurements of these fundamental quantum phenomena.