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Published on: September 5, 2019
J/ψ Production and Polarization within a Jet
Zhong-Bo Kang1,2,3, Jian-Wei Qiu4, Felix Ringer3,5
1Department of Physics and Astronomy, University of California, Los Angeles, California 90095, USA.
Researchers studied J/ψ meson production and polarization within jets in proton-proton collisions. The J/ψ-jet fragmentation function offers insights into production mechanisms and helps differentiate theoretical models for heavy quarkonium.
Area of Science:
- High Energy Physics
- Particle Physics
- Quantum Chromodynamics
Background:
- J/ψ meson production is a key process in high-energy physics.
- Understanding heavy quarkonium production mechanisms is crucial for testing Quantum Chromodynamics (QCD).
- Previous studies often relied on inclusive J/ψ measurements.
Purpose of the Study:
- To investigate the production and polarization of J/ψ mesons within jets at the Large Hadron Collider (LHC).
- To introduce and validate the J/ψ-jet fragmentation function as a novel observable.
- To provide a tool for distinguishing between different nonrelativistic QCD (nrQCD) models.
Main Methods:
- Definition of the J/ψ-jet fragmentation function as a ratio of differential jet cross sections.
- Analysis of proton-proton collision data from the LHC.
- Comparison of experimental results with theoretical predictions from nrQCD global fits.
Main Results:
- The J/ψ-jet fragmentation function is demonstrated to be a powerful observable.
- This function aids in exploring the J/ψ production mechanism.
- It effectively differentiates between various nrQCD global fits.
Conclusions:
- The J/ψ-jet fragmentation function provides valuable insights into J/ψ production.
- Measuring J/ψ meson polarization within jets can further constrain heavy quarkonium production models.
- This approach enhances our understanding of fundamental particle interactions at the LHC.
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